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US12237888B2 - Systems and methods for radio frequency calibration exploiting channel reciprocity in distributed input distributed output wireless communications - Google Patents

Systems and methods for radio frequency calibration exploiting channel reciprocity in distributed input distributed output wireless communications
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US12237888B2
US12237888B2US18/779,453US202418779453AUS12237888B2US 12237888 B2US12237888 B2US 12237888B2US 202418779453 AUS202418779453 AUS 202418779453AUS 12237888 B2US12237888 B2US 12237888B2
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antenna
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Antonio Forenza
Fadi Saibi
Timothy A. Pitman
Stephen G. Perlman
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Rearden LLC
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Abstract

Systems and methods are described for radio frequency (RF) calibration in a multiple antenna system (MAS) with multi-user (MU) transmissions (“MU-MAS”) exploiting uplink/downlink channel reciprocity. The RF calibration is used to compute open-loop downlink precoder based on uplink channel estimates, thereby avoiding feedback overhead for channel state information as in closed-loop schemes. For example, a MU-MAS of one embodiment comprises a wireless cellular network with one or multiple beacon stations, multiple client devices and multiple distributed antennas operating cooperatively via precoding methods to eliminate inter-client interference and increase network capacity.

Description

CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation of co-pending U.S. patent application Ser. No. 18/109,207 filed Feb. 13, 2023, which is a continuation of U.S. patent application Ser. No. 17/498,666, filed Oct. 11, 2021, now U.S. Issued U.S. Pat. No. 11,581,924, Issued on Feb. 14, 2023, which is a continuation of U.S. patent application Ser. No. 16/719,169, filed on Dec. 18, 2019, now U.S. Issued U.S. Pat. No. 11,146,313, issued on Oct. 12, 2021, which is a continuation of U.S. patent application Ser. No. 13/844,355, which was filed Mar. 15, 2013, now U.S. Issued U.S. Pat. No. 10,547,358, Issued on Jan. 28, 2020, all of which is herein incorporated by reference.
RELATED APPLICATIONS
This application may be related to the following co-pending U.S. Patent Applications:
    • U.S. application Ser. No. 13/797,984, entitled “Systems and Methods for exploiting inter-cell multiplexing gain in wireless systems via distributed input distributed output technology”
    • U.S. application Ser. No. 13/797,971, entitled “Systems and Methods for exploiting inter-cell multiplexing gain in wireless systems via distributed input distributed output technology”
    • U.S. application Ser. No. 13/797,950, entitled “Systems and Methods for exploiting inter-cell multiplexing gain in wireless systems via distributed input distributed output technology”
    • U.S. application Ser. No. 13/633,702, entitled “Systems and Methods for wireless backhaul in distributed-input distributed-output wireless systems”
    • U.S. application Ser. No. 13/475,598, entitled “Systems and Methods to enhance spatial diversity in distributed-input distributed-output wireless systems”
    • U.S. application Ser. No. 13/233,006, entitled “System and Methods for planned evolution and obsolescence of multiuser spectrum”
    • U.S. application Ser. No. 13/232,996, entitled “Systems and Methods to Exploit Areas of Coherence in Wireless Systems”
    • U.S. application Ser. No. 13/464,648, entitled “System and Methods to Compensate for Doppler Effects in Distributed-Input Distributed Output Systems”
    • U.S. application Ser. No. 12/917,257, entitled “Systems And Methods To Coordinate Transmissions In Distributed Wireless Systems Via User Clustering”
    • U.S. application Ser. No. 12/802,988, entitled “Interference Management, Handoff, Power Control And Link Adaptation In Distributed-Input Distributed-Output (DIDO) Communication Systems”
    • U.S. application Ser. No. 12/802,974, entitled “System And Method For Managing Inter-Cluster Handoff Of Clients Which Traverse Multiple DIDO Clusters”
    • U.S. application Ser. No. 12/802,989, entitled “System And Method For Managing Handoff Of A Client Between Different Distributed-Input-Distributed-Output (DIDO) Networks Based On Detected Velocity Of The Client”
    • U.S. application Ser. No. 12/802,958, entitled “System And Method For Power Control And Antenna Grouping In A Distributed-Input-Distributed-Output (DIDO) Network”
    • U.S. application Ser. No. 12/802,975, entitled “System And Method For Link adaptation In DIDO Multicarrier Systems”
    • U.S. application Ser. No. 12/802,938, entitled “System And Method For DIDO Precoding Interpolation In Multicarrier Systems”
    • U.S. application Ser. No. 12/630,627, entitled “System and Method For Distributed Antenna Wireless Communications”
    • U.S. Pat. No. 8,170,081, issued May 1, 2012, entitled “System And Method For Adjusting DIDO Interference Cancellation Based On Signal Strength Measurements”
    • U.S. Pat. No. 8,160,121, issued Apr. 17, 2012, entitled, “System and Method For Distributed Input-Distributed Output Wireless Communications”;
    • U.S. Pat. No. 7,885,354, issued Feb. 8, 2011, entitled “System and Method For Enhancing Near Vertical Incidence Skywave (“NVIS”) Communication Using Space-Time Coding.”
    • U.S. Pat. No. 7,711,030, issued May 4, 2010, entitled “System and Method For Spatial-Multiplexed Tropospheric Scatter Communications”;
    • U.S. Pat. No. 7,636,381, issued Dec. 22, 2009, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
    • U.S. Pat. No. 7,633,994, issued Dec. 15, 2009, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
    • U.S. Pat. No. 7,599,420, issued Oct. 6, 2009, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
    • U.S. Pat. No. 7,418,053, issued Aug. 26, 2008, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
BACKGROUND
In the last three decades, the wireless cellular market has experienced increasing number of subscribers worldwide as well as demand for better services shifting from voice to web-browsing and real-time HD video streaming. This increasing demand for services that requires higher data rate, lower latency and improved reliability has driven a radical evolution of wireless technologies through different standards. Beginning from the first generation analog AMPS and TACS (for voice service) in the early 1980s, to 2G and 2.5G digital GSM, IS-95 and GPRS (for voice and data services) in the 1990s, to 3G with UMTS and CDMA2000 (for web-browsing) in the early 2000s, and finally LTE (for high-speed internet connectivity) currently under deployment in different countries worldwide.
Long-term evolution (LTE) is the standard developed by the 3rdgeneration partnership project (3GPP) for fourth generation (4G) wireless cellular systems. LTE can achieve theoretically up to 4× improvement in downlink spectral efficiency over previous 3G and HSPA+ standards by exploiting the spatial components of wireless channels via multiple-input multiple-output (MIMO) technology. LTE-Advanced is the evolution of LTE, currently under standardization, that will enable theoretically up to 8× increase in spectral efficiency over 3G standard systems.
Despite this technology evolution, it is very likely that in the next three years wireless carriers will not be able to satisfy the growing demand for data rate due to raising market penetration of smartphones and tables, offering more data-hungry applications like real-time HD video streaming, video conferencing and gaming. It has been estimated that capacity of wireless networks will grow 5× in Europe from 2011 to 2015 due to improved technologies such as LTE as well as more spectrum made available by the government [25]. For example, the FCC is planning to free 500 MHz of spectrum by 2020 (of which 300 MHz will be available by 2015) to promote wireless Internet connectivity throughout the US as part of the National Broadband Plan [Reference 24]. Unfortunately, the forecast for capacity usage by 2015 is 23× over 2011 in Europe [Reference 25] and similar spectrum deficit is expected to happen in the US by 2014 [References 26-27]. As a result of this data crunch, revenues for wireless carriers may drop below their CAPEX and OPEX with potentially devastating impact on the wireless market [Reference 28].
As capacity gains offered by LTE deployment and increased spectrum availability are insufficient, the only foreseeable solution to prevent this upcoming spectrum crisis is to promote new wireless technologies [Reference 29]. LTE-Advanced (the evolution of LTE standard) promises additional gains over LTE through more sophisticated MIMO techniques and by increasing the density of “small cells” [Reference 30]. However, there are limits to the number of cells that can fit a certain area without incurring interference issues or increasing the complexity of the backhaul to allow coordination across cells.
One promising technology that will provide orders of magnitude increase in spectral efficiency over wireless links without the limitations of conventional cellular systems is distributed-input distributed-output (DIDO) technology (see Related Patents and Applications above. The present invention describes DIDO technology employed in the context of cellular systems (such as LTE or LTE-Advanced), both within and without the constraints of cellular standards, to provide significant performance benefits over conventional wireless systems. We begin with an overview on MIMO and review different spatial processing techniques employed by LTE and LTE-Advanced. Then we show how the present invention provides significant capacity gains for next generation wireless communications systems compared to prior art approaches.
MIMO employs multiple antennas at the transmitter and receiver sides of the wireless link and uses spatial processing to improve link reliability via diversity techniques (i.e., diversity gain) or provide higher data rate via multiplexing schemes (i.e., multiplexing gain) [References 1-2]. Diversity gain is a measure of enhanced robustness to signal fading, resulting in higher signal-to-noise ratio (SNR) for fixed data rate. Multiplexing gain is obtained by exploiting additional spatial degrees of freedom of the wireless channel to increase data rate for fixed probability of error. Fundamental tradeoffs between diversity and multiplexing in MIMO systems were described in [References 3-4].
In practical MIMO systems, link adaptation techniques can be used to switch dynamically between diversity and multiplexing schemes based on propagation conditions [References 20-23]. For example, link adaptation schemes described in [References 22-23] showed that beamforming or Orthogonal Space-Time Block Codes (OSTBC) are preferred schemes in low SNR regime or channels characterized by low spatial selectivity. By contrast, spatial multiplexing can provide significant gain in data rate for channels with high SNR and high spatial selectivity. For example,FIG.1 shows that cells can be divided in two regions: i) multiplexingregion101, characterized by high SNR (due to proximity to the cell tower or base station) where the spatial degrees of freedom of the channel can be exploited via spatial multiplexing to increase data rate; ii)diversity region102 or cell-edge, where spatial multiplexing techniques are not as effective and diversity methods can be used to improve SNR and coverage (yielding only marginal increase indata rate). Note that the circle of themacrocell103 inFIG.1 labels the shaded center of the circle as the “multiplexing region” and the unshaded outer region of the circle as the “diversity region”. This same region designation is used throughoutFIGS.1,3-5, where the shaded region is the “multiplexing region” and the unshaded region is the “diversity region”, even if they are not labeled. For example, the same designation is used for the small-cell104 inFIG.1.
The LTE (Release 8) and LTE-Advanced (Release 10) standards define a set of ten transmission modes (TM) including either diversity or multiplexing schemes [References 35,85-86]:
Hereafter we describe diversity and multiplexing schemes commonly used in cellular systems as well as specific methods employed in LTE as outlined above, and compare them against techniques that are unique for DIDO communications. We first identify two types of transmission methods: i) intra-cell methods (exploiting micro-diversity in cellular systems), using multiple antennas to improve link reliability or data rate within one cell; ii) inter-cell methods (exploiting macro-diversity), allowing cooperation between cells to provide additional diversity or multiplexing gains. Then we describe how the present invention provides significant advantages (including spectral capacity gain) over prior art.
1. Intra-Cell Diversity Methods
Intra-cell diversity methods operate within one cell and are designed to increase SNR in scenarios with poor link quality (e.g., users at the cell-edge subject to high pathloss from the central tower or base station). Typical diversity schemes employed in MIMO communications are beamforming [References 5-11] and orthogonal space-time block codes (OSTBC) [References 12-15].
Diversity techniques supported by the LTE standard are transmit diversity, closed-loop rank-1 precoding and dedicated beamforming [References 31-35]. Transmit diversity scheme supports two or four transmit antennas over the downlink (DL) and only two antennas for the uplink (UL). In the DL channel, it is implemented via space-frequency block codes (SFBC) combined with frequency-switched transmit diversity (FSTD) to exploit space as well as frequency selectivity [31]. Rank-1 precoding creates a dedicated beam to one user based on quantized weights selected from a codebook (pre-designed using limited feedback techniques [References 36-42]) to reduce the feedback overhead from the user equipment (UE) to the base transceiver station (BTS105 inFIG.1, or eNodeB using LTE terminology). Alternatively, dedicated beamforming weights can be computed based on UE-specific reference signal.
2. Intra-Cell Multiplexing Methods
MIMO multiplexing schemes [References 1,19] provide gain in data rate in high SNR regime and in scenarios with enough spatial degrees of freedom in the channel (e.g., rich multipath environments with high spatial selectivity [References 16-18]) to support multiple parallel data streams over wireless links.
The LTE standard supports different multiplexing techniques for single-user MIMO (SU-MIMO) and multi-user MIMO (MU-MIMO) [Reference31]. SU-MIMO schemes have two modes of operation: i) closed-loop, exploiting feedback information from the UE to select the DL precoding weights; ii) open-loop, used when feedback from the UE is unavailable or the UE is moving too fast to support closed-loop schemes. Closed-loop schemes use a set of pre-computed weights selected from a codebook. These weights can support two or four transmit antennas as well as one to four parallel data streams (identified by number of layers of the precoding matrix), depending on the UE request and decision of the scheduler at the BTS. LTE-Advanced will include new transmission modes up toMIMO 8×8 to provide up to 8× increase in spectral efficiency via spatial processing [Reference 62].
MU-MIMO schemes are defined for both UL and DL channels [References 31,50]. In the UL, every UE sends a reference signal to the BTS (consisting of cyclically shifted version of the Zadoff-Chu sequence [Reference 33]). Those reference signals are orthogonal, such that the BTS can estimate the channel from all UEs and demodulate data streams from multiple UEs simultaneously via spatial processing. In the DL, precoding weights for different UEs are selected from codebooks based on the feedback from the UEs and the scheduler (similarly to closed-loop SU-MIMO schemes) and only rank-1 precoding is allowed for every UE (e.g., each UE receives only one data stream).
Intra-cell multiplexing techniques employing spatial processing provide satisfactory performance only in propagation scenarios characterized by high SNR (or SINR) and high spatial selectivity (multipath-rich environments). For conventional macrocells, these conditions may be harder to achieve as BTSs are typically far from the UEs and the distribution of the SINR is typically centered at low values [Reference 43]. In these scenarios, MU-MIMO schemes or diversity techniques may be better choices than SU-MIMO with spatial multiplexing.
Other techniques and network solutions contemplated by LTE-Advanced to achieve additional multiplexing gain (without requiring spatial processing through MIMO) are: carrier aggregation (CA) and small cells. CA [References 30,44-47] combines different portions of the RF spectrum to increase signal bandwidth up to 100 MHz [Reference 85], thereby yielding higher data rates. Intra-band CA combines different bands within the same portion of the spectrum. As such it can use the same RF chain for multiple channels, and multiple data streams are recombined in software. Inter-band CA requires different RF chains to operate at different portions of the spectrum as well as signal processing to recombine multiple data streams from different bands.
The key idea of small cells [References 30,47] is to reduce the size of conventional macro-cells, thereby allowing higher cell density and larger throughput per area of coverage. Small-cells are typically deployed throughinexpensive access points106 with low power transmission (as depicted inFIG.1) as opposed to tall and expensive cell towers used for macro-cells. Two types of small cells are defined in LTE-Advanced: i) metrocells, for outdoor installation in urban areas, supporting up 32 to 64 simultaneous users; and ii) femtocells, for indoor use, can serve at most 4 active users. One advantage of small cells is that the density of UEs close to the BTS is statistically higher, yielding better SNR that can be exploited via spatial multiplexing to increase data rate. There are, however, still many concerns about practical deployment of small cells, particularly related to the backhaul. In fact, it may be challenging to reach BTSs of every small cell via high-speed wireline connections, especially considering the high density of metrocells and femtocells in a given coverage area. While using Line-Of-Sight (LOS) backhaul to small cells can often be implemented inexpensively, compared to wireline backhaul, there often are no practical LOS backhaul paths available for preferred small cell BTS placements, and there is no general solution for Non-Line-Of-Sight (NLOS) wireless backhaul to small cell BTSs. Moreover, small cells require complex real-time coordination across BTSs to avoid interference as in self-organized networks (SON) [References 30,51-52] and sophisticated cell-planning tools (even more complex than conventional cellular systems, due to higher density of small cells) to plan their optimal location [References 48,49]. Finally, handoff is a limiting factor for small cells deployment, particularly in scenarios where groups of subscribers switch cells at the same time, causing large amount of handoff overhead over the backhaul, resulting in high latency and unavoidable dropped calls.
It can be trivially shown there is no practical general solution that enables small cells to co-exist with macrocells and achieve optimal, or necessarily even improved, throughput. Among the myriad of such unsolvable situations is when a small cell is located such that its UEs unavoidably overlap with a macrocell transmission and the small cell and the macrocell use the same frequencies to reach their respective UEs. Clearly in this situation, the macrocell transmission will interfere with the small cell transmission. While there may be some approach that mitigates such interference for particular circumstances of a particular macrocell, a particular small cell, the particular macrocell and small cell UEs involved, the throughput requirements of those UEs, and environmental circumstances, etc., any such approach would be highly specific, not only to the static plan of the macrocell and small cell, but to the dynamic circumstances of a particular time interval. Typically, the full throughput of the channel to each UE cannot be achieved.
3. Inter-Cell Diversity Methods
In a heterogeneous network (HetNet) [Reference 90] where macro-cells coexist with small-cells (e.g., metro-cells, pico-cells and femto-cells) it is necessary to employ different techniques to eliminate inter-cell interference. While HetNets provide better coverage through small-cells, the gains in data rate are only marginal since they require sharing the spectrum through different forms of frequency reuse patterns or using spatial processing to remove interference rather than achieve multiplexing gain. The LTE standards employ inter-cell interference coordination (ICIC) schemes to remove interference particularly at the cell-edge. There are two types of ICIC methods: cell-autonomous and coordinated between BTSs.
Cell-autonomous ICIC schemes avoid inter-cell interference via different frequency reuse patterns depicted inFIG.2, where the hexagons represent the cells and the colors refer to different carrier frequencies. Three types of schemes are considered in LTE: i) full frequency reuse (or reuse1), where the cells utilize all the available bandwidth as inFIG.2a, thereby producing high interference at the cell-edge; ii) hard frequency reuse (HFR), where every cell is assigned with a different frequency band as inFIG.2b(with typical reuse factor of 3) to avoid interference across adjacent cells; iii) fractional frequency reuse (FFR), where the center of the cell is assigned with the whole available bandwidth as infrequency reuse1, whereas the cell-edge operates in HFR mode to mitigate inter-cell interference as inFIG.2c.
Coordinated ICIC methods enable cooperation across BTSs to improve performance of wireless networks. These techniques are a special case of methods taught in Related Patents and Applications above to enable cooperation across wireless transceivers in the general case of distributed antenna networks for multiple UEs all using the same frequency simultaneously. Cooperation across BTSs to remove inter-cell interference for the particular case of cellular systems for a single UE at a given time at a given frequency was described in [Reference 53]. The system in [Reference 53] divides every macrocell into multiple subcells and enables soft-handoff across subcells by employing dedicated beamforming from coordinated BTSs to improve link robustness at a single UE at a single frequency, as it moves along the subcell boundaries.
More recently, this class of cooperative wireless cellular networks has been defined in the MIMO literature as “network MIMO” or “coordinated multi-point” (CoMP) systems. Theoretical analysis and simulated results on the benefits obtained in network MIMO by eliminating inter-cell interference are presented in [References 54-61]. The key advantage of network MIMO and CoMP is to remove inter-cell interference in the overlapping regions of the cells denoted as “interference region”301 inFIG.3 for the case ofmacro-cells302.
CoMP networks are actively becoming part of LTE-Advanced standard as a solution to mitigate inter-cell interference in next generation cellular networks [References 62-64]. Three CoMP solutions have been proposed so far in the standard to remove inter-cell interference: i) coordinated scheduling/beamforming (CS/CB), where the UE receives its data stream from only one BTS via beamfoming and coordination across BTSs is enabled to remove interference via beamforming or scheduling techniques; ii) dynamic cell selection (DCS) that chooses dynamically the cell for every UE on a per-subframe basis, transparently to the UE; iii) joint transmission (JT), where data for given UE is jointly transmitted from multiple BTSs to improve received signal quality and eliminate inter-cell interference. CoMP-JT yields larger gains than CoMP-CS/CB at the expenses of higher overhead in the backhaul to enable coordination across BTSs.
4. Inter-Cell Multiplexing Methods
Prior art multi-user wireless systems add complexity and introduce limitations to wireless networks which result in a situation where a given user's experience (e.g. available throughput, latency, predictability, reliability) is impacted by the utilization of the spectrum by other users in the area. Given the increasing demands for aggregate throughput within wireless spectrum shared by multiple users, and the increasing growth of applications that can rely upon multi-user wireless network reliability, predictability and low latency for a given user, it is apparent that prior art multi-user wireless technology suffers from many limitations. Indeed, with the limited availability of spectrum suitable for particular types of wireless communications (e.g. at wavelengths that are efficient in penetrating building walls), prior art wireless techniques will be insufficient to meet the increasing demands for bandwidth that is reliable, predictable and low-latency.
Prior art intra-cell diversity and multiplexing methods can only provide up to a theoretical 4× increase in throughput over current cellular networks for LTE (throughMIMO 4×4) or at most a theoretical 8× for LTE-Advanced (throughMIMO 8×8), although higher orders of MIMO achieve diminishing improvements in increasing throughput in a given multipath environment, particularly as UEs (such as smartphones) get smaller and more constrained in terms of antenna placement. Other marginal throughput gains in next generation cellular systems may be obtained from additional spectrum allocation (e.g., FCC national broadband plan), exploited via carrier aggregation techniques, and more dense distribution of BTSs via small cell networks and SON [References 30,46]. All the above techniques, however, still rely heavily on spectrum or time sharing techniques to enable multi-user transmissions, since the spectral efficiency gains obtained by spatial processing is limited.
While prior art inter-cell methods (e.g., network MIMO and CoMP systems [References 53-64]) can improve reliability of cellular networks by eliminating inter-cell interference, their capacity gains are only marginal. In fact, those systems constrain power transmitted from every BTS to be contained within the cell boundaries and are only effective to eliminate inter-cell interference due to power leakage across cells.FIG.3 shows one example of cellular networks with three BTSs, each one characterized by its own coverage area or cell. The power transmitted from each BTS is constrained to limit the amount of interference across cells, depicted inFIG.3 by the areas where the cells overlap. As these systems operate in the low SINR regime at the interference region, their gains in spectral efficiency is only marginal, similarly to intra-cell schemes for SU-MIMO. To truly obtain significant capacity gains in inter-cell cooperative networks, power constraints limited to cell-boundaries must be relaxed and spatial multiplexing techniques should be enabled throughout the cells where the SINR is high (not just at the cell-edge with poor SINR performance as in prior art approaches).
FIG.4 shows the case where the power transmitted from the three BTSs401 all transmitting simultaneously at the same frequency is increased, thereby allowing a higher level of interference throughout thecell402. In prior art systems, such interference would result in incoherent interference (disrupting UE signal reception) throughout the interfering areas of the BTSs, but this interference is actually exploited in the present invention through novel inter-cell multiplexing methods using spatial processing to create areas of coherent interference (enhancing UE signal reception) around every UE, thereby providing simultaneous non-interfering data streams to every UE and increasing their SINR throughout the cell.
The scenario depicted inFIG.4 is described in [Reference 89] for the particular case of cellular systems. The system in [Reference 89] consists of several BTSs identifying different cells that are grouped into clusters. Cooperation is allowed only across BTSs from adjacent cells within the same clusters. In this case it was shown that, as the power transmitted from the BTSs increases, there is a limit to the capacity (or spectral efficiency) achievable through inter-cell multiplexing methods. In fact, as the transmit power increases, the out-of-cluster interference increases proportionally, producing a saturation regime for the SINR and consequently for the capacity. As a consequence of this effect, the system in [89] can theoretically achieve at most 3× gain in capacity (i.e., at most three cells within the cluster) and any additional cell included in the cluster would reduce capacity due to increased out-of-cluster interference (e.g., the case of 21 cells per cluster yields lower capacity than the case of 3 cells per cluster). We observe that the fundamental capacity limit in [Reference 89] holds because the BTSs are constrained to predefined locations, as in cellular systems, and multiplexing gain is achieved by increasing transmit power from the BTSs. To obtain theoretically unlimited capacity gain via inter-cell multiplexing methods, the constraint on the BTS placement must be removed, allowing the BTSs to be placed anywhere is convenient.
It would thus be desirable to provide a system that achieves orders of magnitudes increase in spectral efficiency exploiting inter-cell multiplexing gain via spatial processing by removing any constraint on the power transmitted from distributedBTSs501 as well as on their placement.FIG.5 shows one example where manyadditional access points502 are added to deliberately increase the level of incoherent interference throughout thecell503, that is exploited in the present invention to generate areas of coherent interference around UEs, thereby yielding theoretically unlimited inter-cell multiplexing gain. The additional access points are placed serendipitously wherever it is convenient and are not constrained to any specific cell planning, as in cellular systems described in prior art. In an exemplary embodiment of the invention, the serendipitous access points are distributed-input distributed-output (DIDO) access points and the inter-cell multiplexing gain is achieved through DIDO methods described in Related Patents and Applications and [References 77-78]. In another embodiment, the serendipitous access points are low power transceivers, similar to inexpensive Wi-Fi access points or small-cells [References 30,47], thereby providing smaller areas of coverage overlapping throughout the macro-cell as shown inFIG.5.
We observe that prior art inter-cell methods [References 53-64] avoid incoherent interference by intentionally limiting the transmit power from every BTS as inFIG.3 and eliminate residual inter-cell interference (on the overlapping areas between cells) via spatial processing, thereby providing improved SINR and inter-cell diversity gain. We further observe that [89] constrains BTS placement to cell planning while increasing transmit power, thereby limiting the achievable capacity due to out-of-cluster interference, and as such it is still limited by interference. By contrast, the present invention exploits incoherent interference to create coherent interference around the UEs, by transmitting higher power from every BTS serendipitously placed, thereby improving signal quality at the UE that is necessary condition to obtain inter-cell multiplexinq gain throughout the cell via spatial processing. As such, the systems described in prior art cannot be used to achieve unlimited inter-cell multiplexing gain via spatial processing, since there is not sufficient SINR throughout the cell (due to the limited transmit power from the BTSs or the out-of-cluster interference when transmit power is increased) to enable inter-cell multiplexing methods as in the present invention. Moreover, the systems described in prior art would be inoperable to achieve the multiplexing gain achieved in the present invention depicted inFIGS.4-5, given that prior art systems were designed to avoid inter-cell interference within the diversity regions shown in the shaded area ofFIG.1 andFIGS.3-5 rather than exploit inter-cell interference in the multiplexing regions to obtain inter-cell multiplexing gain as achieved in the present invention.
BRIEF DESCRIPTION OF THE DRAWINGS
A better understanding of the present invention can be obtained from the following detailed description in conjunction with the drawings, in which:
FIG.1 illustrates multiplexing and diversity regions for a macro-cell and a small-cell.
FIG.2A illustrates full frequency reuse pattern in conventional cellular systems.
FIG.2B illustrates hard frequency reuse (HFR) pattern in conventional cellular systems.
FIG.2C illustrates fractional frequency reuse (FFR) pattern in conventional cellular systems.
FIG.3 illustrates the interference region between adjacent macro-cells.
FIG.4 illustrates multiple BTSs transmitting at higher power to increase the level of interference between cells.
FIG.5 illustrates one example where many access points are added to deliberately increase the level of incoherent interference throughout the cell.
FIG.6 illustrates the network elements in LTE networks.
FIG.7A illustrates the LTE frame structure for FDD operation.
FIG.7B illustrates the LTE frame structure for TDD operation.
FIG.8A illustrates the LTE “resource elements” and “resource blocks” in the OFDM DL channel.
FIG.8B illustrates the LTE “resource elements” and “resource blocks” in the SC-FDMA UL channel.
FIG.9 illustrates one embodiment of a multi-user (MU) multiple antenna system (MAS), or MU-MAS, consisting of antenna-clusters and user-clusters.
FIG.10 illustrates one embodiment of a MU-MAS wherein a different cell ID is associated to every antenna-subcluster.
FIG.11 illustrates one embodiment of a MU-MAS wherein the same set of cell IDs are assigned to the antenna-subclusters with given repetition pattern.
FIG.12 illustrates the SNR distribution for practical deployment of MU-MAS systems in downtown San Francisco, CA, with sparsely and densely populated areas.
FIG.13 illustrates one embodiment of a MU-MAS consisting of CP, distributed BTSs and multiple UEs.
FIG.14 illustrates one embodiment of a MU-MAS consisting of CP, distributed BTSs, multiple devices and one UE connected to the devices as well as the BTSs via network interfaces.
FIG.15 illustrates one embodiment of a MU-MAS wherein the UE is in a case that physically attaches to the user device.
FIG.16 illustrates one embodiment of a MU-MAS wherein the distributed antennas communicate to the UEs via the UL and DL channels.
FIG.17 illustrates one embodiment of a MU-MAS wherein the distributed antennas communicate to the beacon via the UL and DL channels.
FIG.18 illustrates the symbol error rate (SER) performance of the MU-MAS with linear precoding with/without RF mismatch and with/without RF calibration.
FIG.19 illustrates the symbol error rate (SER) performance of the MU-MAS with linear and non-linear precoding with/without RF mismatch and with/without RF calibration.
FIGS.20A-B illustrates the 4-QAM constellations at the UEs (before modulo operation) when applying THP non-linear precoding.
DETAILED DESCRIPTION
One solution to overcome many of the above prior art limitations is an embodiment of Distributed-Input Distributed-Output (DIDO) technology. DIDO technology is described in the following patents and patent applications, all of which are assigned the assignee of the present patent and are incorporated by reference. These patents and applications are sometimes referred to collectively herein as the “Related Patents and Applications.”
    • U.S. application Ser. No. 13/633,702, entitled “Systems and Methods for wireless backhaul in distributed-input distributed-output wireless systems”
    • U.S. application Ser. No. 13/475,598, entitled “Systems and Methods to enhance spatial diversity in distributed-input distributed-output wireless systems”
    • U.S. application Ser. No. 13/233,006, entitled “System and Methods for planned evolution and obsolescence of multiuser spectrum”
    • U.S. application Ser. No. 13/232,996, entitled “Systems and Methods to Exploit Areas of Coherence in Wireless Systems”
    • U.S. application Ser. No. 13/464,648, entitled “System and Methods to Compensate for Doppler Effects in Distributed-Input Distributed Output Systems”
    • U.S. application Ser. No. 12/917,257, entitled “Systems And Methods To Coordinate Transmissions In Distributed Wireless Systems Via User Clustering”
    • U.S. application Ser. No. 12/802,988, entitled “Interference Management, Handoff, Power Control And Link Adaptation In Distributed-Input Distributed-Output (DIDO) Communication Systems”
    • U.S. application Ser. No. 12/802,974, entitled “System And Method For Managing Inter-Cluster Handoff Of Clients Which Traverse Multiple DIDO Clusters”
    • U.S. application Ser. No. 12/802,989, entitled “System And Method For Managing Handoff Of A Client Between Different Distributed-Input-Distributed-Output (DIDO) Networks Based On Detected Velocity Of The Client”
    • U.S. application Ser. No. 12/802,958, entitled “System And Method For Power Control And Antenna Grouping In A Distributed-Input-Distributed-Output (DIDO) Network”
    • U.S. application Ser. No. 12/802,975, entitled “System And Method For Link adaptation In DIDO Multicarrier Systems”
    • U.S. application Ser. No. 12/802,938, entitled “System And Method For DIDO Precoding Interpolation In Multicarrier Systems”
    • U.S. application Ser. No. 12/630,627, entitled “System and Method For Distributed Antenna Wireless Communications”
    • U.S. Pat. No. 8,170,081, issued May 1, 2012, entitled “System And Method For Adjusting DIDO Interference Cancellation Based On Signal Strength Measurements”
    • U.S. Pat. No. 8,160,121, issued Apr. 17, 2012, entitled, “System and Method For Distributed Input-Distributed Output Wireless Communications”;
    • U.S. Pat. No. 7,885,354, issued Feb. 8, 2011, entitled “System and Method For Enhancing Near Vertical Incidence Skywave (“NVIS”) Communication Using Space-Time Coding.”
    • U.S. Pat. No. 7,711,030, issued May 4, 2010, entitled “System and Method For Spatial-Multiplexed Tropospheric Scatter Communications”;
    • U.S. Pat. No. 7,636,381, issued Dec. 22, 2009, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
    • U.S. Pat. No. 7,633,994, issued Dec. 15, 2009, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
    • U.S. Pat. No. 7,599,420, issued Oct. 6, 2009, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
    • U.S. Pat. No. 7,418,053, issued Aug. 26, 2008, entitled “System and Method for Distributed Input Distributed Output Wireless Communication”;
To reduce the size and complexity of the present patent application, the disclosure of some of the Related Patents and Applications is not explicitly set forth below. Please see the Related Patents and Applications for a full description of the disclosure.
The present invention describes system and methods to exploit inter-cell multiplexing gain in wireless communications networks via spatial processing, employing a multiple antenna system (MAS) with multi-user (MU) transmissions (a Multi-User Multiple Antenna System, or “MU-MAS”), where the multiple antennas are placed serendipitously. In one embodiment of the invention, the power transmitted from the multiple antennas is constrained to minimize interference at cell boundaries (as in conventional cellular systems) and spatial processing methods are employed only to eliminate inter-cell interference. In another embodiment of the invention, the power transmitted from the multiple antennas is not constrained to any particular power level (as long as their power emission level falls within the regulatory, safety or practical (e.g. available power, transmitter and/or antenna specifications) limits), thereby creating intentionally higher levels of inter-cell interference throughout the cell that is exploited to achieve inter-cell multiplexing gain and increase the capacity of the wireless communications network.
In one embodiment, the wireless communications network is a cellular network as inFIGS.1 and3, such as a cellular network based on LTE standards and the multiple antennas serendipitously deployed are transceivers for macro-cells or small-cells. In another embodiment of the invention, the wireless communications network is not constrained to any particular cell layout and the cell boundaries can extend over larger areas as inFIGS.4-5. For example, the wireless communications network could be a wireless local area network (WLAN) with multiple antennas being WiFi access points, or a mesh, ad-hoc or sensor network, or a distributed antenna system, or a DIDO system with access points placed serendipitously without any transmit power constraint. But, such example network structures should not be considered as limiting the general applicability of the present invention to wireless communications networks. The present invention applies to any wireless network where multiplexing gain is achieved by transmitting signals from multiple antennas that interfere where received by multiple UEs so as to create simultaneous non-interfering data streams to multiple UEs.
The MU-MAS consists of a centralized processor, a network and M transceiver stations (or distributed antennas) communicating wirelessly to N client devices or UEs. The centralized processor unit receives N streams of information with different network content (e.g., videos, web-pages, video games, text, voice, etc., streamed from Web servers or other network sources) intended for different client devices. Hereafter, we use the term “stream of information” to refer to any stream of data sent over the network containing information that can be demodulated or decoded as a standalone stream, according to certain modulation/coding scheme or protocol, to produce any data, including but not limited to audio, Web and video content. In one embodiment, the stream of information is a sequence of bits carrying network content that can be demodulated or decoded as a standalone stream.
The centralized processor utilizes precoding transformation to combine (according to algorithms, such as those described in the Related Patents and Applications) the N streams of information from the network content into M streams of bits. By way of example, but not limitation, the precoding transformation can be linear (e.g., zero-forcing [Reference 65], block-diagonalization [References 66-67], matrix inversion, etc.) or non-linear (e.g., dirty-paper coding [References 68-70] or Tomlinson-Harashima precoding [References 71-72], lattice techniques or trellis precoding [References 73-74], vector perturbation techniques [References 75-76]). Hereafter, we use the term “stream of bits” to refer to any sequence of bits that does not necessarily contain any useful bit of information and as such cannot be demodulated or decoded as a standalone stream to retrieve the network content. In one embodiment of the invention, the stream of bits is the complex baseband signal produced by the centralized processor and quantized over given number of bits to be sent to one of the M transceiver stations.
Precoding is computed at the centralized processor by employing the Channel State Information (CSI) and applied over the DL or UL channels to multiplex data streams to or from multiple users. In one embodiment of the invention, the centralized processor is aware of the CSI between the distributed antennas and the client devices, and utilizes the CSI to precode data sent over the DL or UL channels. In the same embodiment, the CSI is estimated at the client devices and fed back to the distributed antennas. In another embodiment, the DL-CSI is derived at the distributed antennas from the UL-CSI using radio frequency (RF) calibration and exploiting UL/DL channel reciprocity.
In one embodiment, the MU-MAS is a distributed-input distributed-output (DIDO) system as described in Related Patents and Patent Applications. In another embodiment, the MU-MAS depicted inFIG.13 consists of:
    • User Equipment (UE)1301: An RF transceiver for fixed and/or mobile clients receiving data streams over the downlink (DL) channel from the backhaul and transmitting data to the backhaul via the uplink (UL) channel
    • Base Transceiver Station (BTS)1302: The BTSs interface the backhaul with the wireless channel. BTSs of one embodiment are access points consisting of Digital-to-Analog Converter (DAC)/Analog-to-Digital Converter (ADC) and radio frequency (RF) chain to convert the baseband signal to RF. In some cases, the BTS is a simple RF transceiver equipped with power amplifier/antenna and the RF signal is carried to the BTS via RF-over-fiber technology as described in Related Patents and Applications.
    • Controller (CTR)1303: A CTR is one particular type of BTS designed for certain specialized features such as transmitting training signals for time/frequency synchronization of the BTSs and/or the UEs, receiving/transmitting control information from/to the UEs, receiving the channel state information (CSI) or channel quality information from the UEs. One or multiple CTR stations can be included in any MU-MAS system. When multiple CTRs are available, the information to or from those stations can be combined to increase diversity and improve link quality. In one embodiment, the CSI is received from multiple CTRs via maximum ratio combining (MRC) techniques to improve CSI demodulation. In another embodiment, the control information is sent from multiple CTRs via maximum ratio transmission (MRT) to improve SNR at the receiver side. The scope of the invention is not limited to MRC or MRT, and any other diversity technique (such as antenna selection, etc.) can be employed to improve wireless links between CTRs and UEs.
    • Centralized Processor (CP)1304: The CP is a server interfacing the Internet or other types ofexternal networks1306 with the backhaul. In one embodiment, the CP computes the MU-MAS baseband processing and sends the waveforms to the distributed BTSs for DL transmission
    • Base Station Network (BSN)1305: The BSN is the network connecting the CP to the distributed BTSs carrying information for either the DL or the UL channel. The BSN is a wireline or a wireless network or a combination of the two. For example, the BSN is a DSL, cable, optical fiber network, or Line-of-Sight (LOS) or Non-Line-of-Sight (NLOS) wireless link. Furthermore, the BSN is a proprietary network, or a local area network, or the Internet.
Hereafter we describe how the above MU-MAS framework is incorporated into the LTE standard for cellular systems (and also non-cellular system utilizing LTE protocols) to achieve additional gains in spectral efficiency. We begin with a general overview of LTE framework and modulation techniques employed in the DL and UL channels. Then we provide a brief description of the physical layer frame structure and resource allocation in the LTE standard. Finally, we define MU-MAS precoding methods for downlink (DL) and uplink (UL) channels in multi-user scenarios using the LTE framework. For the DL schemes, we propose two solutions: open-loop and closed-loop DIDO schemes.
LTE is designed with a flat network architecture (as opposed a hierarchical architecture from previous cellular standards) to provide: reduced latency, reduced packet losses via ARQ, reduced call setup time, improved coverage and throughput via macro-diversity. The network elements in LTE networks depicted inFIG.6 are per [Reference 79]:
    • GW (gateway): is the router connecting the LTE network to external networks (i.e., the Internet). The GW is split into serving gateway (S-GW)601 that terminates theE-UTRAN interface608 and PDN gateway (P-GW)602 being the interface with external networks. The S-GW and P-GW are part of the so called evolved packet core (EPC)609;
    • MME (mobility management entity)603: manages mobility, security parameters and UE identity. The MME is also part of the LTE EPC;
    • eNodeB (enhanced Node-B)604: is the base station handling radio resource management, user mobility and scheduling;
    • UE (user equipment)605: is the mobile station.
    • S1 and X2 interfaces (606 and607): are the wireline or wireless backhauls between the MME and eNodeBs (S1-MME), the S-GW and eNodeBs (S1-U) and between multiple eNodeBs (X2).
In one embodiment of the invention, the MU-MAS network is an LTE network wherein the UE is the LTE UE, the BTS is the LTE eNodeB, the CTR is the LTE eNodeB or MME, the CP is the LTE GW, the BSN is the S1 or X1 interface. Hereafter we use the terms distributed antennas, BTS and eNodeB interchangeably to refer to any base station in MU-MAS, DIDO or LTE systems.
The LTE frame has duration of 10 msec and consists of ten subframes as depicted inFIG.7 [References 33,80]. Every subframe is divided in two slots of duration 0.5 msec each. The LTE standards defines two types of frames: i)type 1 for FDD operation as inFIG.7a), where all subframes are assigned either for the DL or UL channels; ii)type 2 for TDD operation as inFIG.7b), where, part of the subframes are assigned to the DL and part to the UL (depending on the selected configuration), whereas a few subframes are reserved for “special use”. These is at least one special subframe per frame and it consists of three fields: i) downlink pilot time slot (DwPTS) reserved for DL transmission; ii) guard period (GP); iii) uplink pilot time slot (UpPTS), for UL transmission.
LTE employs orthogonal frequency division multiplexing (OFDM) and orthogonal frequency division multiple access (OFDMA) modulation for the DL and single-carrier frequency division multiple access (SC-FDMA) for the UL. The “resource element” (RE) is the smallest modulation structure in LTE and consists of one OFDM subcarrier in frequency and one OFDM symbol duration in time, as shown inFIG.8afor the DL channel and inFIG.8bfor the UL channel. The “resource block” (RB) consists of 12 subcarriers in frequency and one 0.5 msec slot in time (consisting of 3 to 7 OFDM symbol periods, depending on DL versus UL channel and type of cyclic prefix). Resource blocks for every UE are assigned on a subframe basis. Since the MU-MAS in the present invention uses spatial processing to send multiple data streams to different UEs, at every subframe all resource blocks can be allocated to the same UE. In one embodiment, all or a subset of resource blocks are allocated to every UE and simultaneous non-interfering data streams are sent to the UEs via precoding.
To setup the link between the BTS and the UEs, the LTE standard defines the synchronization procedure. The BTS sends two consecutive signals to the UE: the primary synchronization signal (P-SS) sent over the primary synchronization channel (PSCH) and the secondary synchronization signal (S-SS) sent over the secondary synchronization channel (SSCH). Both signals are used by the UE for time/frequency synchronization as well as to retrieve the cell ID. The P-SS consists of length-63 Zadoff-Chu sequence from which the UE derives the physical layer ID (0 to 2). The S-SS is an interleaved concatenation of two length-31 binary sequences and is used to derive the cell ID group number (0 to 167). From the two identity numbers above, the UE derives the physical cell ID (PCI, defined from 0 to 503).
In the MU-MAS system described in the present invention, there are no cell boundaries as the power transmitted from the BTSs is increased intentionally to produce interference that is exploited to create areas of coherence around the UEs. In the present invention, different BTSs are grouped into “antenna-clusters” or “DIDO-clusters” as defined in related U.S. Pat. No. 8,170,081, issued May 1, 2012, entitled “System And Method For Adjusting DIDO Interference Cancellation Based On Signal Strength Measurements”. For example,FIG.9 shows the main antenna-cluster901 and one adjacent antenna-cluster902. Every antenna-cluster consists ofmultiple BTSs903.
The cell ID can be used in MU-MAS and DIDO systems to differentiate the antenna-clusters. In one embodiment of the invention, the same cell ID is transmitted from all BTSs of the same antenna-cluster via the P-SS and S-SS. In the same embodiment, different antenna-clusters employ different cell IDs. In another embodiment of the invention, all BTSs within the same antenna-cluster1001 are grouped into “antenna-subclusters”1003 depicted inFIG.10 with different shaded colors and adifferent cell ID1004 is associated to every antenna-subcluster. In one embodiment, the antenna-subclusters are defined statically according to predefined cluster planning or based on GPS positioning information. In another embodiment, the antenna-subclusters are defined dynamically based on measurements of relative signal strength between BTSs or GPS positioning information. In a different embodiment of the invention, a different cell ID is assigned to every area of coherence (described in related co-pending U.S. application Ser. No. 13/232,996, entitled “Systems and Methods to Exploit Areas of Coherence in Wireless Systems”) associated to the UEs.
When all BTSs within the same antenna-cluster or antenna-subcluster transmit the LTE broadcast channels (e.g., P-SS and S-SS) to the UEs, destructive interference may degrade the performance of time or frequency synchronization enabled by the broadcast channel. Destructive interference may be caused by multipaths generated from spatially distributed BTSs that recombine incoherently at some UE locations. To avoid or mitigate this effect, in one embodiment of the invention, only one BTS out of all BTSs within the same antenna-cluster or antenna-subcluster transmits the LTE broadcast channels (e.g., P-SS and S-SS) to all UEs. In the same embodiment, the BTS that transmits the LTE broadcast channels is selected to maximize the power received at the UEs over the broadcast channels. In another embodiment, only a limited set of BTSs is selected to transmit simultaneously the LTE broadcast channels to all UEs, such that destructive interference is avoided at the UE. In a different embodiment of the invention, the LTE broadcast channels are sent at higher power than the payload to reach all the UEs within the same antenna-cluster or antenna-subcluster.
As described above, LTE-Advanced supports carrier aggregation (CA) schemes to increase data rate over the DL channel. In MU-MASs, CA can be used in combination with precoding to increase per-user data rate. In one embodiment of this invention, transmit precoding is applied to different portions of the RF spectrum (inter-band CA) or different bands within the same portion of the spectrum (intra-band CA) to increase per-user data rate. When employing inter-band CA, pathloss at different bands may change significantly as those bands are centered at different carrier frequencies. In conventional LTE cellular systems, frequency bands at lower carrier frequencies may experience lower pathloss than higher carrier frequencies. Hence, applying inter-band CA in cellular systems may cause undesired inter-cell interference at lower carrier frequencies. By contrast, the MU-MAS in the present invention is not limited by interference at the cell boundary as the BTSs are distributed and there is no concept of cell. This more flexible system layout allows different methods for inter-band CA in MU-MAS. In one embodiment of the present invention, the MU-MAS enables inter-band CA by employing one set of BTSs to operate at lower carrier frequencies and another set of BTSs to operate at higher carrier frequencies, such that the two sets intersect or one set is the subset of the other. In another embodiment, the MU-MAS with precoding employs CA methods in conjunction with frequency hopping patterns to improve robustness against frequency-selective fading or interference.
1. Downlink Closed-Loop MU-MAS Precoding Methods in LTE
MU-MAS closed-loop schemes can be used either in time-division duplex (TDD) or frequency division duplex (FDD) systems. In FDD systems, DL and UL channels operate at different frequencies and therefore the DL channel state information (CSI) must be estimated at the UE side and reported back to the CP through the BTSs or the CTRs via the UL channel. In TDD systems, DL and UL channels are set at the same frequency and the system may employ either closed-loop techniques or open-loop schemes exploiting channel reciprocity (as described in the following section). The main disadvantage of closed-loop schemes is they require feedback, resulting in larger overhead for control information over the UL.
The general mechanism for closed-loop schemes in MU-MASs is described as follows: i) the BTSs send signaling information to the UEs over the DL; ii) the UEs exploit that signaling information to estimate the DL CSI from all the “active BTSs”; iii) the UEs quantize the DL CSI or use codebooks to select the precoding weights to be used for the next transmission; iv) the UEs send the quantized CSI or the codebook index to the BTSs or CTRs via the UL channel; v) the BTSs or CTRs report the CSI information or codebook index to the CP that calculates the precoding weights for data transmission over the DL. The “active BTSs” are defined as the set of BTSs that are reached by given UE. For example, in related co-pending U.S. application Ser. No. 12/802,974, entitled “System And Method For Managing Inter-Cluster Handoff Of Clients Which Traverse Multiple DIDO Clusters” and related co-pending U.S. application Ser. No. 12/917,257, entitled “Systems And Methods To Coordinate Transmissions In Distributed Wireless Systems Via User Clustering” we defined the “user-cluster”905 as the set of BTSs that are reached by given UE, as depicted inFIG.9. The number of active BTSs are limited to a user-cluster so as to reduce the amount of CSI to be estimated from the BTSs to given UE, thereby reducing the feedback overhead over the UL and the complexity of the MU-MAS precoding calculation at the CP.
As described above], MU-MAS precoding employs either linear or non-linear methods. In the case of non-linear methods (e.g., dirty-paper coding [References 68-70] or Tomlinson-Harashima precoding [References 71-72], lattice techniques or trellis precoding [References 73-74], vector perturbation techniques [References 75-76]), successive interference cancellation is applied at the transmitter to avoid inter-user interference. In this case the precoding matrix is computed accounting for the CSI to all the UEs within the antenna-cluster. Alternatively, linear precoding methods (e.g., zero-forcing [Reference 65], block-diagonalization [66-67], matrix inversion, etc.) can be used on a user-cluster basis, since the precoding weights for every UE are computed independent on the other UEs. Depending on the number of UEs and eNodeBs inside the antenna-cluster and user-clusters, linear versus non-linear precoding methods offer different computational performance. For example, if the MU-MAS consists of K UEs per antenna-cluster, M eNodeBs per antenna-cluster and C eNodeBs per user-cluster, the complexity of linear precoding is O(K*C3) whereas for non-linear precoding it is O(M*K2). It is thus desirable to develop a method that dynamically switches between the two types of precoding techniques based on the number if UEs and eNodeBs in MU-MASs to reduce the computational complexity at the CP. In one embodiment of the invention, the MU-MAS employs linear precoding methods. In another embodiment, the MU-MAS employs non-linear precoding methods. In the same embodiment of the invention, the MU-MAS dynamically switches between linear and non-linear precoding methods based on the number of UEs and eNodeBs in the antenna-clusters and user-clusters to reduce computational complexity at the CP. In a different embodiment, the MU-MAS switches between precoding multiplexing methods for UEs experiencing good channel quality (e.g., in the proximity of eNodeBs) and beamforming or diversity methods for UEs with poor link quality (e.g., far away from the eNodeBs).
1.1 Downlink MU-MAS Signaling Methods within the LTE Standard
The LTE standard defines two types of reference signals (RS) that can be used for DL signaling in closed-loop schemes [References 33,50,82-83]: i) cell-specific reference signal (CRS); ii) UE specific RS such as channel state information (CSI) reference signal (CSI-RS) and demodulation RS (DM-RS). The cell-specific RS is not precoded, whereas the UE-specific RS is precoded [Reference 50]. CRS is used inLTE Release 8 that employs SU/MU-MIMO codebook-based techniques with up to four antennas in every cell. LTE-Advanced Release 10 supports non-codebook based SU/MU-MIMO schemes with up to eight transmit antennas as well as CoMP schemes with antennas distributed over different cells. As such,Release 10 allows for more flexible signaling schemes via CSI-RS. In the present invention, we describe how either types of signaling schemes can be used in MU-MAS systems to enable precoding.
1.1.1 MU-MAS Signaling Using CRS
The CRS is employed in LTE (Release 8) systems to estimate the CSI from all transmit antennas at the BTS to the UE [80,84]. The CRS is obtained as the product of a two-dimensional orthogonal sequence and a two-dimensional pseudo-random numerical (PRN) sequence. There are 3 orthogonal sequences (i.e., placed on orthogonal sets of OFDM subcarriers) and 168 possible PRN sequences, for a total of 504 different CRS sequences. Every sequence uniquely identifies one cell. Each of the three orthogonal CRSs is associated to one of the three physical layer IDs (0 to 2) that generate a different cell ID, as explained in the previous subsection. The CRS is transmitted within the first and third-last OFDM symbol of every slot, and every sixth subcarrier. Orthogonal patterns in time and frequency are designed for every transmit antenna of the BTS, for the UE to uniquely estimate the CSI from each of transmit antennas.Release 8 defines up to four orthogonal patters per CRS, one for each of the four transmit antennas employed inMIMO 4×4. This high density of CRS in time and frequency (i.e., sent every slot of 0.5 msec, and every sixth subcarrier), producing 5% overhead, was designed intentionally to support scenarios with fast channel variations over time and frequency [83].
InRelease 8, since there are up to 3 orthogonal CRSs with 4 orthogonal patterns each for multi-antenna modes (or 6 orthogonal CRSs for single antenna mode), it is possible to discriminate up to 12 transmit antennas within the same coverage area, without causing interference to the CRS. In one embodiment of the invention, the antenna-cluster1001 is divided into three antenna-subclusters1005 as inFIG.10. Different physical layer IDs (or cell IDs) are associated to each of the antenna-subclusters, such that each antenna-subcluster is assigned with one of the three orthogonal CRSs with four orthogonal patterns (i.e., each antenna-subcluster can support up to four BTS without causing interference to the CRS from other BTSs). In this embodiment, every cluster can support up to 12 BTSs without causing interference to the CRS.
In scenarios where more than twelve BTSs are placed within the same cluster, it is desirable to increase the number of available orthogonal CRSs to support larger number of active BTSs (i.e., BTSs that simultaneously transmit precoded signals to the UEs). One way to achieve that is to define more than three antenna-subclusters1003 per antenna-cluster1101 and assign the same three physical layer IDs (orcell ID1104 from 0 to 2) to the antenna-subclusters1103 with a repetition pattern as shown inFIG.11. We observe that the antenna-subclusters may come in different shapes and are defined in such a way that every user-cluster1102 cannot reach two antenna-subclusters with the same physical layer ID, thereby avoiding interference to the CRS. For example, one way to achieve that is to define the area of the antenna-subcluster1103 larger than the user-cluster1102 and avoid that adjacent antenna-subcluster use the same physical layer ID. In one embodiment of the invention, the multiple antenna-subclusters are placed within the same antenna-cluster with repetition patterns such that their respective CRSs do not interfere, thereby enabling simultaneous non-interfering transmissions from more than twelve BTSs.
In practical MU-MAS systems, it may be the case that every UE sees more than only four BTSs within its user-cluster. For example,FIG.12 shows the SNR distribution for practical deployment of DIDO or MU-MAS systems in downtown San Francisco, CA. The propagation model is based on 3GPP pathloss/shadowing model [81] and assumes a carrier frequency of 900 MHz. The dots in the map indicate the location of the DIDO-BTSs, whereas the dark circle represents the user-cluster (with the UE being located at the center of the circle). In sparsely populated areas1201, the UE sees only a few BTSs within its user-cluster (e.g., as low as three BTSs for the example inFIG.12), whereas in denselypopulated areas1202 each user-cluster may comprise as many as 26 BTSs as inFIG.12.
The high redundancy of the CRS can be exploited in MU-MASs to enable CSI estimation from any number of transmit antennas greater than four. For example, if the channel is fixed-wireless or characterized by low Doppler effects, there is no need to compute the CSI from all four transmit antennas every 0.5 msec (slot duration). Likewise, if the channel is frequency-flat, estimating the CSI every sixth subcarrier is redundant. In that case, the resource elements (RE) occupied by the redundant CRS can be re-allocated for other transmit antennas or BTSs in the MU-MAS. In one embodiment of the invention, the system allocates resource elements of redundant CRS to extra antennas or BTSs in the MU-MAS system. In another embodiment, the system estimates time and frequency selectivity of the channel and dynamically allocates the CRS for different BTSs or only the BTSs within the user-cluster to different resource elements.
The number of BTSs included in every user-cluster depends on the signal power level measured at the UE from all BTSs in the user-cluster relative to the noise power level, or signal-to-noise ratio (SNR). In one embodiment, the UE estimates the SNR from all BTSs in its neighborhood and selects the BTSs that belong to its user-cluster based on the SNR information. In another embodiment, the CP is aware of the SNR from the BTSs to every UE (based on feedback information from the UEs or information obtained from the UL channel, assuming UL/DL channel reciprocity) and selects the set of BTSs to be included in every user-cluster.
The number of BTSs included in every user-cluster determines the performance of the MU-MAS methods described in the present invention. For example, if the number of BTSs per user-cluster is low, the UE experiences higher level of out-of-cluster interference, resulting in high signal-to-interference-plus-noise ratio (SINR) and low data rate. Similarly, if large number of BTSs is selected for every user-cluster, the SNR measured at the UE from the BTSs at the edge of the user-cluster is low and may be dominated by the out-of-cluster interference from adjacent BTSs outside the user-cluster. There is an optimal number of BTSs per user-cluster that produces the highest SINR and data rate. In one embodiment of the invention, the CP selects the optimal number of BTSs per user-cluster to maximize SINR and data rate to the UE. In another embodiment of the invention, the BTSs per user-cluster are dynamically selected to adapt to the changing conditions of the propagation environment or UE mobility.
Another drawback of using large number of BTSs per user-cluster is high computational load. In fact, the more BTSs in the user-cluster the larger the computation complexity of the MU-MAS precoder. In one embodiment of the inventions, the BTSs per user-cluster are selected to achieve optimal tradeoff between SINR or data rate performance and computational complexity of the MU-MAS precoder. In another embodiment, the BTSs per user-cluster are dynamically selected based on tradeoffs between propagation conditions and computational resources available in the MU-MAS.
1.1.2 MU-MAS Signaling Using CSI-RS and DM-RS
In the LTE-Advanced (Release 10) standard the CSI-RS is used by every UE to estimate the CSI from the BTSs [References 33,83]. The standard defines orthogonal CSI-RS for different transmitters at the BTS, so that the UE can differentiate the CSI from different BTSs. Up to eight transmit antennas at the BTS are supported by the CSI-RS as in Tables 6.10.5.2-1,2 in [Reference 33]. The CSI-RS is sent with a periodicity that ranges between 5 and 80 subframes (i.e., CSI-RS send every 5 to 80 msec) as in Tables 6.10.5.3-1 in [33].
The periodicity of the CSI-RS in LTE-Advanced was designed intentionally larger than the CRS in LTE to avoid excessive overhead of control information, particularly for legacy LTE terminals unable to make use of these extra resources. Another reference signal used for CSI estimation is to demodulation RS (DM-RS). The DM-RS is a demodulation reference signal intended to a specific UE and transmitted only in the resource block assigned for transmission to that UE.
When more than eight antennas (maximum number of transmitters supported by the LTE-Advanced standard) are within the user-cluster, alternative techniques must be employed to enable DIDO precoding while maintaining system compliance to the LTE-Advanced standard. In one embodiment of the invention, every UE uses the CSI-RS or the DM-RS or combination of both to estimate the CSI from all active BTSs in its own user-cluster. In the same embodiment, the DIDO system detects the number of BTSs within the user-cluster and whether or not the user-cluster is compliant to the LTE-Advanced standard (supporting at most eight antennas). If it not compliant, the DIDO system employs alternative techniques to enable DL signaling from the BTSs to the current UE. In one embodiment, the transmit power from the BTSs is reduced until at most eight BTSs are reachable by the UE within its user-cluster. This solution, however, may result in reduction of data rate as coverage would be reduced.
Another solution is to divide the BTSs in the user-cluster in subsets and send one set of CSI-RS for every subset at a time. For example, if the CSI-RS periodicity is 5 subframes (i.e., 5 msec) as in Table 6.10.5.3-1 in [Reference 33], every 5 msec the CSI-RS is sent from a new subset of BTSs. Note that this solution works as long as the CSI-RS periodicity is short enough to cover all BTS subsets within the channel coherence time of the UE (which is a function of the Doppler velocity of the UE). For example, if the selected CSI-RS periodicity is 5 msec and the channel coherence time is 100 msec, it is possible to define up to 20 BTS subsets of 8 BTS each, adding up to a total of 160 BTSs within the user-cluster. In another embodiment of the invention, the DIDO system estimates the channel coherence time of the UE and decides how many BTSs can be supported within the user-cluster for given CSI-RS periodicity, to avoid degradation due to channel variations and Doppler effect.
The solutions for CSI-RS proposed so far are all compliant with the LTE standard and can be deployed within the framework of conventional LTE systems. For example, the proposed method that allows more than eight antennas per user-cluster would not require modifications of the UE LTE hardware and software implementation, and only slight modification of the protocols used at the BTSs and CP to enable selection of BTSs subset at any given time. These modifications can be easily implemented in a cloud-based software defined radio (SDR) platform, which is one promising deployment paradigm for DIDO and MU-MAS systems. Alternatively, if it is possible to relax the constraints of the LTE standard and develop slightly modified hardware and software for LTE UEs to support similar, but non-LTE-compliant DIDO or MU-MAS modes of operation, so as enable UEs to be able to operate in full LTE-compliant mode, or in a modified mode that supports non-LTE-compliant DIDO or MU-MAS operation. For example, this would enable another solution is to increase the amount of CSI-RS to enable higher number of BTSs in the system. In another embodiment of the invention, different CSI-RS patterns and periodicities are allowed as a means to increase the number of supported BTSs per user-cluster. Such slight modifications to the LTE standard may be small enough that existing LTE UE chipsets can be used with simply software modification. Or, if hardware modification would be needed to the chipsets, the changes would be small.
1.2 Uplink MU-MAS CSI Feedback Methods within the LTE Standard
In the LTE and LTE-Advanced standards, the UE feedbacks information to the BTS to communicate its current channel conditions as well as the precoding weights for closed-loop transmission over the DL channel. Three different channel indicators are included in those standards [Reference 35]:
    • Rank indicator (RI): indicates how many spatial streams are transmitted to given UE. This number is always equal or less than the number of transmit antennas.
    • Precoding matrix indicator (PMI): is the index of the codebook used for precoding over the DL channel.
    • Channel quality indicator (CQI): defines the modulation and forward error correction (FEC) coding scheme to be used over the DL to maintain predefined error rate performance for given channel conditions
Only one RI is reported for the whole bandwidth, whereas the PMI and CQI reporting can be wideband or per sub-band, depending on the frequency-selectivity of the channel. These indicators are transmitted in the UL over two different types of physical channels: i) the physical uplink control channel (PUCCH), used only for control information; ii) the physical uplink shared channel (PUSCH), used for both data and control information, allocated over one resource block (RB) and on a sub-frame basis. On the PUCCH, the procedure to report the RI, PMI and CQI is periodic and the indicators can be either wideband (for frequency-flat channels) or UE-selected on a sub-band basis (for frequency-selective channels). On the PUSCH, the feedback procedure is aperiodic and can be UE-selected on a sub-band basis (for frequency-selective channels) or higher-layer configured sub-band (e.g., fortransmission mode 9 in LTE-Advance with eight transmitters).
In one embodiment of the invention, the DIDO or MU-MAS system employs RI, PMI and CQI to report to BTSs and CP its current channel conditions as well as precoding information. In one embodiment, the UE uses the PUCCH channel to report those indicators to the CP. In another embodiment, in case a larger number of indicators is necessary for DIDO precoding, the UE employs the PUSCH to report additional indicators to the CP. In case the channel is frequency-flat, the UE can exploit extra UL resources to report the PMI for a larger number of antennas in the DIDO systems. In one embodiment of the invention, the UE or BTSs or CP estimate the channel frequency selectivity and, in case the channel is frequency-flat, the UE exploits the extra UL resources to report the PMI for larger number of BTSs.
2. Downlink Open-Loop MU-MAS Precoding Methods in LTE
Open-loop MU-MAS precoding schemes can only be used in time-division duplex (TDD) systems employing RF calibration and exploiting channel reciprocity. The general mechanism of open-loop schemes in MU-MASs consists of: i) the UEs send signaling information to the BTSs or CTRs over the UL; ii) the BTSs or CTRs exploit that signaling information to estimate the UL CSI from all UEs; iii) the BTSs or CTRs employ RF calibration to convert the UL CSI into DL CSI; iv) the BTSs or CTRs send the DL CSI or codebook index to the CP via the BSN; v) based on that DL CSI, the CP calculates the precoding weights for data transmission over the DL. Similarly to closed-loop MU-MAS precoding schemes, user-clusters can be employed to reduce the amount of CSI to be estimated at the BTSs from the UEs, thereby reducing the computational burden at the BTSs as well as the amount of signaling required over the UL. In one embodiment of the invention, open-loop precoding techniques are employed to send simultaneous non-interfering data streams from the BTSs to the UEs over the DL channel.
In LTE there are two types of reference signal for the uplink channel [References 31,33,87]: i) sounding reference signal (SRS), used for scheduling and link adaptation; ii) demodulation reference signal (DMRS), used for data reception. In one embodiment of the invention, the DMRS is employed in open-loop precoding systems to estimate the UL channels form all UEs to all BTSs. In the time domain, the DMRS is sent at the fourth OFDM symbol (when a normal cyclic prefix is used) of every LTE slot (of duration 0.5 msec). In the frequency domain, the DMRS sent over the PUSCH is mapped for every UE to the same resource block (RB) used by that UE for UL data transmission. The length of the DMRS is MRS=mNRB, where m is the number of RBs and NRB=12 is the number of subcarriers per RB. To support multiple UEs, up to twelve DMRSs are generated from one base Zadoff-Chu [Reference 88] or computer-generated constant amplitude zero autocorrelation (CG-CAZAC) sequence, via twelve possible cyclic shifts of the base sequence. Base sequences are divided into 30 groups and neighbor LTE cells select DMRS from different groups to reduce inter-cell interference. For example, if the maximum number of resource blocks within one OFDM symbol is 110 (i.e., assuming 20 MHz overall signal bandwidth), it is possible to generate up to 110×30=3300 different sequences. We observe that the 30 base sequences are not guaranteed to be orthogonal and are designed to reduce interference across cells, without eliminating it completely. By contrast, the 12 cyclic shifts of the same base sequence are orthogonal, thereby allowing up to 12 UEs to transmit in the UL over the same RB without interference. The value of cyclic shift to be used by every UE is provided by the BTS through the downlink control information (DCI) message sent over the PDCCH. The DCI inRelease 8 consists of 3 bits, that enables the UE to use only up to 8 values of cyclic shift in the pool of twelve possible options.
The cyclic shifts of the base DMRS sequence are exploited in the present invention to enable MU-MIMO schemes over the UL channel as well as to estimate the CSI from multiple UEs for DL precoding when channel reciprocity is exploited in TDD mode. In one embodiment of the invention, open-loop precoding methods are employed to send simultaneous non-interfering data streams from the distributed BTSs to the UEs over the DL channel. In a different embodiment of the invention, open-loop MU-MIMO methods are employed to receive simultaneous non-interfering data streams from the UEs to the BTSs over the UL channel. The same CSI estimated over the UL from all active UEs can be used to compute the receiver spatial filter for MU-MIMO operation in the UL as well as the weights for DL precoding. SinceRelease 8 defines only up to 8 orthogonal DMRSs (due to limited DCI bits, as explained above), MU-MIMO schemes for the UL channel and MU-MAS precoding schemes for the DL channel can support at most eight UEs, assuming all UEs utilize the full UL bandwidth.
One way to increase the number of simultaneous UEs being served through MU-MIMO in UL or MU-MAS precoding in DL is to multiplex the DMRS of the UEs over the frequency domain. For example, if 10 MHz bandwidth is used in TDD mode, there are 50 RBs that can be allocated to the UEs. In this case, 25 interleaved RBs can be assigned to one set of eight UEs and the remaining 25 interleaved RBs to another set of UEs, totaling to 16 UEs that can be served simultaneously. Then, the CSI is computed by interpolating the estimates from the DMRS sent over interleaved RBs. Larger number of simultaneous UEs can be supported by increasing the number of interleaving patterns of the UL RBs. These patterns can be assigned to different UEs statically or dynamically according to certain frequency hopping sequence. In one embodiment of the invention, DMRSs are assigned to the UEs over orthogonal interleaved RBs to increase the number of UEs to be supported via MU-MIMO or MU-MAS precoding. In the same embodiment, the interleaved RBs are assigned statically. In another embodiment, the interleaved RBs are assigned dynamically according to certain frequency hopping pattern.
An alternative solution is to multiplex the DMRS of different UEs in the time domain. For example, the UEs are divided into different groups and the DMRSs for those groups are sent over consecutive time slots (of duration 0.5 msec each). In this case, however, it is necessary to guarantee that the periodicity of the DMRS assignment for different groups is lower than the channel coherence time of the fastest moving UE. In fact, this is necessary condition to guarantee that the channel does not vary for all UEs from the time the CSI is estimated via DMRS to the time system transmits DL data streams to the UEs via DIDO precoding. In one embodiment of the invention, the system divides the active UEs into groups and assigns the same set of DMRS to each group over consecutive time slots. In the same embodiment, the system estimates the shortest channel coherence time for all active UEs and calculates the maximum number of UE groups as well as the periodicity of the DMRS time multiplexing based on that information.
Another solution is to spatially separate different groups of UEs employing the same sets of DMRSs. For example, the same set of orthogonal DMRSs can be used for all the UEs from different antenna-subclusters inFIG.11 identified by the same cell ID. In one embodiment of the invention, groups of UEs employing the same set of orthogonal DMRSs are spatially separated to avoid interference between the groups. In the same embodiment, the same set of orthogonal DMRSs is employed by different antenna-subclusters identified by the same cell ID. The MU-MAS may assign the UEs to “virtual cells” to maximize the number of DMRS that can be used in the UL. In one exemplary embodiment, the virtual cell is the area of coherence (described in related co-pending U.S. application Ser. No. 13/232,996, entitled “Systems and Methods to Exploit Areas of Coherence in Wireless Systems”) around the UE and the DIDO system generates up to 3300 areas of coherence for different UEs. In another embodiment of the invention, each of the 30 base sequences is assigned to a different antenna-cluster (clusters are defined in related U.S. Pat. No. 8,170,081, issued May 1, 2012, entitled “System And Method For Adjusting DIDO Interference Cancellation Based On Signal Strength Measurements”) to reduce inter-cluster interference across adjacent antenna-clusters.
3. Uplink MU-MAS Methods in LTE
The present invention employs open-loop MU-MIMO schemes over the UL channel to receive simultaneous UL data streams from all UEs to the BTSs. The UL open-loop MU-MIMO scheme consists of the following steps: i) UEs send signaling information and data payload to all BTSs; ii) the BTSs compute the channel estimations from all UEs using the signaling information; iii) the BTSs send the channel estimates and data payloads to the CP; iv) the CP uses the channel estimates to remove inter-channel interference from all UEs' data payloads via spatial filtering and demodulates the data streams form all UEs. In one embodiment, the open-loop MU-MIMO system employs single-carrier frequency division multiple access (SC-FDMA) to increase the number of UL channels from the UEs to the BTSs and multiplex them in the frequency domain.
In one embodiment, synchronization among UEs is achieved via signaling from the DL and all BTSs are assumed locked to the same time/frequency reference clock, either via direct wiring to the same clock or sharing a common time/frequency reference, in one embodiment through GPSDO. Variations in channel delay spread at different UEs may generate jitter among the time references of different UEs that may affect the performance of MU-MIMO methods over the UL. In one embodiment, only the UEs within the same antenna-cluster (e.g., UEs in close proximity with one another) are processed with MU-MIMO methods to reduce the relative propagation delay spread across different UEs. In another embodiment, the relative propagation delays between UEs are compensated at the UEs or at the BTSs to guarantee simultaneous reception of data payloads from different UEs at the BTSs.
The methods for enabling signaling information for data demodulation over the UL are the same methods used for signaling in the downlink open-loop DIDO scheme described at the previous section. The CP employs different spatial processing techniques to remove inter-channel interference from the UEs data payload. In one embodiment of the invention, the CP employs non-linear spatial processing methods such as maximum likelihood (ML), decision feedback equalization (DFE) or successive interference cancellation (SIC) receivers. In another embodiment the CP employs linear filters such as zeros-forcing (ZF) or minimum mean squared error (MMSE) receivers to cancel co-channel interference and demodulate the uplink data streams individually.
4. Integration with Existing LTE Networks
In the United States and other regions of the world, LTE networks are already in operation or are in the process of being deployed and/or committed to be deployed. It would be of significant benefit to LTE operators if they could gradually deploy DIDO or MU-MAS capability into their existing or already-committed deployments. In this way, they could deploy DIDO or MU-MAS in areas where it would provide the most immediate benefit, and gradually expand the DIDO or MU-MAS capability to cover more their network. In time, once they have sufficient DIDO or MU-MAS coverage in an area, they can choose to cease using cells entirely, and instead switch entirely to DIDO or MU-MAS and achieve much higher spectral density at much lower cost. Throughout this entire transition from cellular to DIDO or MU-MAS, the LTE operator's wireless customers will never see a loss in service. Rather, they'll simply see their data throughput and reliability improve, while the operator will see its costs decline.
There are several embodiments that would enable a gradual integration of DIDO or MU-MAS into existing LTE networks. In all cases, the BTSs for DIDO or MU-MAS will be referred as DIDO-LTE BTSs and will utilize one of the LTE-compatible DIDO or MU-MAS embodiments described above, or other LTE-compatible embodiments as they may be developed in the future. Or, the DIDO-LTE BTSs will utilize a slight variant of the LTE standard, such as those described above and the UEs will either be updated (e.g. if a software update is sufficient to modify the UE to be DIDO or MU-MAS compatible), or a new generation of UEs that are DIDO- or MU-MAS-compatible will be deployed. In either case, the new BTSs that support DIDO or MU-MAS either within the constraints of the LTE standard, or as a variant of the LTE standard will be referred to below as DIDO-LTE BTSs.
The LTE standard supports various channel bandwidths (e.g., 1.4, 3, 5, 10, 15 and 20 MHz). In one embodiment, an operator with an existing LTE network would either allocate new bandwidth for the LTE-DIDO BTSs, or would subdivide the existing LTE spectrum (e.g. 20 MHz could be subdivided into two 10 MHz blocks) to support conventional LTE BTSs in a cellular configuration in one block of spectrum and DIDO LTE BTSs in another block of spectrum. Effectively, this would establish two separate LTE networks, and UE devices would be configured to use one or the other network, or select between the two. In the case of subdivided spectrum, the spectrum could be divided evenly between the conventional LTE network and the DIDO-LTE BTS network, or unevenly, allocated more spectrum to whichever network could best utilize it given the level of cellular LTE BTS and DIDO-LTE BTS deployment and/or UE usage patterns. This subdivision could change as needed over time, and at some point, when there are sufficient DIDO-LTE BTSs deployed to provide the same or better coverage as the cellular BTSs, all of the spectrum can be allocated to DIDO-LTE BTSs, and the cellular BTSs can be decommissioned.
In another embodiment, the conventional cellular LTE BTSs can be configured to be coordinated with the DIDO-LTE BTSs such that they share the same spectrum, but take turns using the spectrum. For example, if they were sharing the spectrum use equally, then each BTS network would utilize one 10 ms frame time in alternation, e.g. one 10 ms frame for the cellular LTE BTS, followed by one 10 ms frame for the DIDO-LTE BTS. The frame times could be subdivided in unequal intervals as well. This interval splitting could change as needed over time, and at some point, when there are sufficient DIDO-LTE BTSs deployed to provide the same or better coverage as the cellular BTSs, all of the time can be allocated to DIDO-LTE BTSs, and the cellular BTSs can be decommissioned.
In another embodiment of the invention, DIDO or MU-MAS is employed as LOS or NLOS wireless backhaul to small cells in LTE and LTE-Advanced networks. As small-cells are deployed in LTE networks, DIDO or MU-MAS provides high-speed wireless backhaul to those small cells. As the demand for higher data rate increases, more small-cells are added to the network until the wireless network reaches a limit where no more small-cells can be added in a given area without causing inter-cell interference. In the same embodiment of the invention, DIDO-LTE BTSs are used to replace gradually small-cells, thereby exploiting inter-cell interference to provide increased network capacity.
5. MU-MAS LTE Scheduler
In MU-MAS, distributed antennas or BTSs transmit simultaneous precoded data streams to multiple UEs. As described in Related Patents and Applications, the number of BTSs must be equal or larger than the number of UEs to enable simultaneous data transmissions. In practical deployments, the number of UEs may exceed the number of BTSs. In this case, the extra UEs can be selected for transmission at different time slots or frequency bands according to certain scheduling policy. The scheduler exploits the channel quality information of the UEs to decide the best set of UEs to be serviced at a give time and frequency. Different scheduling methods are used in the present invention, including proportional fair scheduler, round-robin or greedy algorithms.
As described in the previous sections, the LTE standard defines two parameters to inform the scheduler about the link quality of every UE: CQI and SRS. The CQI measures the quality of the DL channel and is fed back from the UE to the BTS. The SRS is signaling information sent from the UE to the BTS to measure the UL channel quality. Both indicators provide information of the UL/DL channel quality over time and frequency domains. In FDD systems, the DL scheduler must use the CQI as performance measure, since the DL and UL channel quality may vary due to different carrier frequencies. In TDD mode, the DL schedule employs either the CSI or the SRS or combination of both to perform its scheduling decision. The same performance metrics can be used for UL scheduling. In one embodiment of the invention, the MU-MAS scheduler employs the CQ and SRS as performance metrics used by the scheduling algorithm.
The MU-MAS described in the present invention enables one additional channel quality indicator not disclosed in prior art: the spatial selectivity indicator (SSI), described in related U.S. application Ser. No. 13/475,598, entitled “Systems and Methods to enhance spatial diversity in distributed-input distributed-output wireless systems”. The SSI can be computed based on the CSI obtained from all UEs via feedback mechanisms or from the UL channel (applying UL/DL channel reciprocity). In one embodiment of the invention, the scheduler employs the SSI as performance metric. The SSI is a measure of the spatial diversity available in the wireless link. The SSI depends on the spatial characteristics of the BTSs as well as the UEs. In one exemplary embodiment of the invention, the scheduler obtains the SSI from all the UEs and schedules the UEs with the “optimal” SSI according to certain scheduling criterion. If more BTSs are available than the active BTSs, the users selection criterion described above is combined with the antenna selection method described in related U.S. application Ser. No. 13/475,598, entitled “Systems and Methods to enhance spatial diversity in distributed-input distributed-output wireless systems”. In one embodiment of the invention, the scheduler selects the optimal subset of BTSs and UEs based on certain scheduling criterion.
With respect toFIGS.9,10 and11, in certain scenarios there may not be enough orthogonal signaling sequences to enable large number of BTSs within the same antenna-cluster or antenna-subcluster. In this case, some level of interference may occur if additional BTSs are activated to cover regions with larger numbers of active UEs. In one embodiment of the invention, the scheduler measures the level of interference between antenna-clusters or antenna-subclusters and schedules the UEs to minimize the effect of that interference over the wireless link.
The antenna selection algorithm described in related U.S. application Ser. No. 13/475,598, entitled “Systems and Methods to enhance spatial diversity in distributed-input distributed-output wireless systems” is employed in the present invention to select the optimal set of active BTSs based on the SSI. This antenna selection algorithm, however, may require high computational complexity as MU-MAS precoding processing must be applied over all possible permutations of antenna subsets before making a decision on the best subset based on the SSI performance metric. In MU-MAS with large number of cooperative BTSs, this computational burden may become expensive or untenable to achieve in practical deployments. It is thus desirable to develop alternative techniques to reduce the number of antenna subsets while maintaining good performance of the antenna selection method. In one embodiment of the invention, the MU-MAS employs methods based on queuing of the antenna subset ID numbers, hereafter referred to as “antenna shuffling method”. In one embodiment of the invention, the antenna shuffling method subdivides the queue containing all possible antenna subset IDs (i.e., all possible permutations of active BTSs for given set of available BTSs) into different groups and assigns different priorities to those groups. These groups are defined to assign fair chances to all subset IDs to be selected, but the SSI metric is computed only for limited number of subsets (e.g., those ones with highest priority) thereby reducing computational complexity. In one exemplary embodiment, the queue of subset ID is divided into three groups where each group is assigned a different rule: i)group #1 contains the IDs with highest priority which are pulled out of the group only in case a new subset with higher priority is identified; ii)group #2 where new antenna subsets (selected from group #3) are included at every iteration of the method; iii)group #3 where the antenna subset IDs are shuffled according to round-robin policy. All subset IDs withingroup #1 and #2 are sorted at each iteration of the method based on their priority to give opportunity to subsets IDs fromgroup #2 to be upgraded togroup #1. The SSI is computed only for the subsets withingroups #1 and #2 and the antenna selection algorithm is applied only to those subsets.
6. MU-MAS LTE User Equipment
The present invention comprises of different designs of the LTE UE. In one embodiment, the UE is an LTE UE that is compatible with the MU-MAS employing precoding as described above and depicted inFIG.13.
In a different embodiment, theUE1401 connects todifferent devices1402 and1403 through a first network interface1404 (e.g., Wi-Fi, USB, Ethernet, Bluetooth, optical fiber, etc.) and to the MU-MAS through asecond network interface1405 as shown inFIG.14. The UE inFIG.14 is equipped with two different network interfaces wherein each network interface comprises of one or multiple antennas (although in alternative embodiments,first network interface1404 may be a wired interface without antennas). The antennas of the first network interface are denoted with circles, whereas the antennas of the second network interface are denoted with triangles. In the same embodiment, the second network interface supports MU-MAS precoding, MU-MAS implemented with LTE-compliant protocols, or MU-MAS (implemented with or without LTE-compliant protocols) and an alternative network. In the same embodiment, the alternative network is a cellular network, an LTE network or Wi-Fi network. In the same embodiment, the UE works with either and/or both MU-MAS and/or the alternative network and the UE selects either MU-MAS or the alternative network based on some criteria. In the same embodiment, the criteria are: i) whether only one network is available and is chosen; ii) whether one network has better performance; iii) whether one network is more economical; iv) whether one network is less congested; v) whether one network uses less UE resources.
In one embodiment of the invention, theUE1501 is in a case that physically attaches to theuser device1502 as depicted inFIG.15. In the same embodiment, the case serves as a decorative addition to the user device. In another embodiment, the case serves to protect the user device from physical damage. The UE comprises ofbattery1503, and one or multiple network interfaces1504.
In one embodiment, the UE electronics are embedded within a case. In the same embodiment, the UE electronics include abattery1503. The battery includes a power charger coupling through a physical electrical contact or a wireless contact. Exemplary power couplings are conductive, inductive, RF, light, or thermal, but power couplings are not limited these approaches. In the same embodiment, the UE electronics are coupled to receive power from the user device. This power coupling is through a physical contact or through an inductive or wireless contact. In the same embodiment, the user device is coupled to receive power from the MU-MAS UE. This coupling is through a physical contact or through an inductive or wireless contact. In a different embodiment, the same power charger powers both the user device and the MU_MAS UE.
In one embodiment of the invention, the UE is configured to communicate to the user device. In the same embodiment, the UE can be reset (e.g., via switch, or by removing power) so the user device can initially connect to it, and once the connection is established, the UE can be configured by the user device. Such configuration includes configuring a private password and/or other security protocols. In a different embodiment, the UE includes a means to be configured to communicate with the user device. Such configuration is done via a communications port to another device, wherein the communications port is USB, or via controls and/or buttons on the UE, or via display, wherein buttons or touch input are used.
In another embodiment, the same RF chain is used for MU-MAS communications as well as for the alternative network. In another embodiment, a different RF chain is used for MU-MAS communications and the alternative network.
7. Radio Frequency (RF) Calibration Exploiting Channel Reciprocity
Conventional closed-loop MU-MAS methods employ UL channel to feedback quantized CSI or codebook indices (as in codebook-based limited feedback schemes) from the UEs to the BTSs or CP. This scheme, however, results in large feedback overhead and high protocol complexity to enable the CSI feedback channel. In TDD systems, where UL and DL are set at the same frequency, it is thus desirable to avoid CSI feedback by exploiting UL/DL channel reciprocity. In practical systems, transmit and receive RF chains at the BTS or UE typically have different characteristics due to different RF components and circuit layout. Therefore, to preserve UL/DL reciprocity it is necessary to employ RF calibration methods to compensate for RF mismatch between transmit and receive chains.
Models for RF mismatch in typical wireless transceivers were described in [Reference 91] and hardware solutions to mitigate the effect of RF mismatch on the performance of adaptive digital beamforming systems were discussed in [Reference 92]. Software techniques to enable RF calibration in multiple-input multiple-output (MIMO) systems where proposed in [References 93,94] and experimental results for multiple-input single-output (MISO) and for systems employing antenna selection where shown in [Reference 95] and [Reference 96], respectively.
Prior art, however, assumes all RF chains are collocated on the same circuit board as in MIMO systems, thereby simplifying the RF calibration problem since information about the RF mismatch between all the RF chains is available locally. By contrast, the present invention consists of distributed antennas geographically placed far apart such that communication between those antennas only happens through the network. Hence, we define a novel system unit that we call “beacon station” designed specifically to enable RF calibration in MU-MASs with distributed antennas. Moreover, in prior art MIMO systems significant RF coupling between transmit/receive chains occurs due to the close proximity of the RF chains on the same board. By contrast, in the present invention, RF coupling occurs only between one transmit and one receive chain of the same distributed antenna. Hence, techniques employed for RF calibration are significantly different than the ones described in prior art as we will demonstrate hereafter. Finally, the RF calibration methods disclosed in prior art were limited to systems with a single user (e.g. a single User Equipment device). As shown in the derivations at the following paragraphs, systems with multiple users (e.g., MU-MASs) are particularly sensitive to RF mismatch, since that yields inter-user interference. As such, special techniques must be employed to enable RF calibration while exploiting channel reciprocity, as described below.
The present invention consists of a MU-MAS that employs radio frequency (RF) calibration and exploits reciprocity between downlink (DL) and uplink (UL) channels, comprising of multiple distributed antennas, multiple User Equipment devices (UEs) and one or multiple beacon stations. In one embodiment, the RF calibration is employed to compute the DL MU-MAS precoding weights from the UL channel estimates.FIG.16 shows the block diagram of the system including the distributedantennas1601,multiple UEs1613, onebeacon station1619, one base station network (BSN)1607 connecting the distributed antennas, one centralized processor (CP)1621 and onefeedback channel1620, that is the calibration control channel from the beacon to the CP.
Every distributed antenna unit consists ofbaseband unit1602, transmitRF chain1603, receiveRF chain1604,RF switch unit1605 that dynamically selects transmit/receive RF chains for TDD operation, andantenna1606. In one embodiment, the baseband unit comprises baseband signal processing and digital-to-analog converter (DAC). In another embodiment, all the baseband processing is executed at the CP such that RF signal is sent to every distributed antenna (e.g., via RF coax cables or RF over fiber networks). Every UE consists ofbaseband unit1608, transmit/receiveRF chains1609 and1610, respectively,RF switch1611 andantenna1612. The beacon station is composed ofbaseband unit1614, transmit/receiveRF chains1615 and1616, respectively,RF switch1617 andantenna1618.
The wireless links between the distributed antennas and the UEs are modeled as complex Gaussian channel matrix H of dimensions M×N, where M is the number of UEs and N is the number of distributed antennas. We define HDLtheDL channel matrix1622 and HULthe UL channel matrix1623. Channel reciprocity holds as long as DL and UL are set to the same carrier frequency. In this case, the following property holds
HDL=HUL=H
where the symbol † denotes the transpose matrix operation.
The model above holds for either single-carrier or multicarrier systems. In multicarrier systems (e.g., OFDM) the complex matrix H represents the channel of one subcarrier, and the same model extends to any subcarrier in the system.FIG.16 also shows transmit and receive RF units at the distributed antennas, modeled with complex channel matrices ATand AR, respectively, of dimension N×N. Likewise, the transmit and receive RF units at the UEs are modeled by the matrices BTand BR, respectively, of dimension MxM. In the case of MU-MAS with distributed antennas, RF coupling between distributed antennas and/or UEs is negligible due to relative antenna separation, such that AT, AR, BTand BRare represented as diagonal matrices. We observe this is a unique feature of MU-MAS with distributed antennas and distributed UEs. As such, the present invention is novel over prior art related to multiple-input multiple-output (MIMO) systems.
Based on the block diagram inFIG.16, we write the effective DL channel matrix (modeling transmit/receive RF units and wireless links) as
H_DL=BRHDLAT=BRHAT
and the effective UL channel matrix as
H_UL=ARHULBT=ARHBT
In the present invention, RF calibration is obtained by preconditioning the matrix of the UL channel estimatesHULwith the complex RF calibration matrix C, as follows
{tilde over (H)}DL=(CHUL)
In one embodiment of the invention comprising LTE cellular networks, the effective UL channel is estimated at the eNodeB employing the DMRS from all UEs.
As shown inFIG.17, the matrix C is computed from the effective DL (kDL)channel1722 and UL (kUL)channel1723 vectors between every distributedantenna1701 and thebeacon station1719, defined as
kDL=DRkDLAT
and
kUL=ARkULDT
where kDL=kUL=k are column vectors, assuming DL and UL channel reciprocity between the distributed antennas and the beacon station. In one embodiment, the DL channel between the distributed antennas and the beacon station is estimated by sending training signals from the distributed antennas to the beacon. In one exemplary embodiment comprising LTE cellular networks, the DL sequences CRS, or CSI-RS, or DM-RS are used by the beacon to estimate the effective DL channel from all eNodeBs. In the same embodiment, the UL channel between the beacon station and the distributed antennas is estimated by sending training signals from the beacon station to the antennas. In one embodiment of the invention, multiple beacon stations are employed to improve the estimation of the RF calibration matrix. In the present invention, there is no RF coupling between the distributed antennas, such that the RF calibration matrix C is diagonal.
When linear precoding (e.g., zero-forcing [Reference 65], block-diagonalization or BD [References 66-67], matrix inversion, etc.) is employed, the symbol received at the m-th UE is given by
rm=h¯DL,mw¯DL,msm+u=1,umMh¯DL,mw¯DL,usu+nm
wherehDL,mis the m-th row of the effective channel matrixHDL,wDL,mis the precoding vector for the m-th UE derived fromHDL, smis the symbol transmitted to the m-th UE and nmis white Gaussian noise at the m-th UE. For the sake of simplicity, the above model assumes a single receive antenna at every UE, but the present invention extends to any number of antennas at the UE. It is possible to show that when the RF calibration method described above is employed the inter-client interference at every UE is pre-cancelled at the transmitter such that the following condition holds
h¯DL,mw¯DL,u=h¯DL,mw˜DL,u=0,u=1,,Mwithum
where {tilde over (w)}DL,uis the precoding weight vector derived from the RF calibrated channel matrix {tilde over (H)}DL. In one embodiment, the precoding weights are computed from the RF calibrated channel matrix to pre-cancel inter-client interference at every UE.FIG.18 shows the symbol error rate (SER) performance of MU-MAS employing BD precoding and 4-QAM modulation in frequency-flat channels for three scenarios: i) no RF mismatch; ii) RF mismatch without calibration; iii) RF mismatch with calibration. We observe the RF calibration method in the present invention reduces the SER down to ideal performance (i.e., with no RF mismatch).
In another embodiment of the invention, non-linear precoding methods (e.g., dirty-paper coding [References 68-70] or Tomlinson-Harashima precoding or THP [References 71-72], lattice techniques or trellis precoding [References 73-74], vector perturbation techniques [References 75-76]) are applied to the RF calibrated channel matrix to pre-cancel inter-client interference at every UE.FIG.19 shows that the SER obtained with non-linear precoding techniques using RF calibration and UL/DL reciprocity matches the performance of linear precoding.FIG.20ashows the constellation before THP modulo operation forUE1, whereasFIG.20bshows the constellation before THP modulo operation for UE2 (THP lattice structure) in MU-MAS with two distributed antennas and two UEs. THP precoding is designed to completely cancel interference to the “reference-UE” and applies successive interference cancellation schemes to the other UEs. As such it is expected the SER performance for the reference-UE may be better than the other UEs. In one embodiment, Round-Robin or proportional fair scheduling or other types of scheduling techniques are applied to the UEs to guarantee similar average SER performance to all UEs.
The computational performance of BD and THP methods may vary depending on the number of distributed antennas and/or UEs within every user-cluster. In one embodiment of the invention, the MU-MAS dynamically switches between linear and non-linear precoding techniques to minimize the computational complexity of the precoder, depending on the number of distributed antennas and/or UEs in every user-cluster.
In practical MU-MASs, the beacon station is a wireless transceiver dedicated to the use for RF calibration. Since the beacon requires feedback channel to communicate the estimated effective DL channel from all distributed antennas for calibration purposes, the beacon communicates to the CP via wireless or wireline link.
In another embodiment, the beacon station is any of the distributed antennas, and the calibration parameters are computed with respect to that antenna. In the same embodiment, the distributed antennas are organized as in a mesh network and pair-wise RF calibration between adjacent distributed antennas is computed to guarantee good link quality. The RF calibration is carried across all antennas and calibration information is fed back to the CP such that all distributed antennas are calibrated with one another. In another embodiment, the beacon is any of the UEs that use any wireless or wireline link to feedback calibration information to the CP.
The calibration information from the beacon to the CP is quantized over limited number of bits or sent via codebook-based limited feedback methods to reduce overhead over the control channel. We observe that RF calibration can be run at a slow rate (depending on the rate of variation of the RF characteristics, due to temperature changes, etc.). If the rate of update of the calibration information is low, the wireless data channel can be used to send that information to the CP without causing any severe loss of data rate. In one exemplary embodiment, in LTE cellular networks the PUSCH is used to feedback calibration information from the UE to the CP.
One or multiple geographically distributed beacons are employed per user-cluster, or antenna-cluster or antenna-subcluster depending on the relative link quality between the beacon and the distributed antennas in that cluster. In one embodiment, the beacon with the best signal quality to all distributed antennas in the cluster is used for RF calibration. In another embodiment, the beacons are dynamically selected at every instance of time to adapt to the changing quality of the links to the distributed antennas due to variations in the propagation environment. In another embodiment, multiple beacons are employed cooperatively (e.g., via maximum ratio combining/transmission) to maximize the SNR or SINR over the links from/to the distributed antennas. In a different embodiment, one or more RF calibrations are carried out per cluster.
In one embodiment of the invention, the beacon station is used not only for RF calibration but also to send signaling information to the distributed antennas and/or UEs including time and frequency synchronization reference. The distributed antennas and/or UEs employ that reference to maintain time and frequency synchronization with the MU-MAS master reference clock. In one embodiment, this reference clock distribution from the beacon to the distributed antennas and UEs is enabled via the LTE multimedia broadcast single frequency network (MBSFN) communication channel.
REFERENCES
  • [1] A. Paulraj, R. Nabar, and D. Gore, Introduction to Space-Time Wireless Communications, Cambridge University Press, 40 West 20th Street, New York, NY, USA, 2003
  • [2] D. Gesbert, M. Shafi, D. Shiu, P. J. Smith and A. Naguib, “From theory to practice: an overview of MIMO space-time coded wireless systems”,IEEE Journal on Selected Areas on Communications, vol. 2, n. 3, pp. 281-302, April 2003
  • [3] L. Zheng and D. N. C. Tse, “Diversity and multiplexing: a fundamental tradeoff in multiple-antenna channels,”IEEE Trans. Info. Th., vol. 49, no. 5, pp. 1073-1096, May 2003
  • [4] D. N. C. Tse, P. Viswanath, and L. Zheng, “Diversity-multiplexing tradeoff in multiple-access channels”,IEEE Trans. Info. Th., vol. 50, no. 9, pp. 1859-1874, September 2004
  • [5] E. Visotsky and U. Madhow, “Space-time transmit precoding with imperfect feedback,” IEEE Trans. Info. Th., vol. 47, pp. 2632-2639, September 2001.
  • [6] S. A. Jafar, S. Vishwanath, and A. Goldsmith, “Channel capacity and beamforming for multiple transmit and receive antennas with covariance feedback,” Proc. IEEE Int. Conf. on Comm., vol. 7, pp. 2266-2270, June 2001.
  • [7] S. A. Jafar and A. Goldsmith, “Transmitter optimization and optimality of beamforming for multiple antenna systems,” IEEE Trans. Wireless Comm., vol. 3, pp. 1165-1175, July 2004.
  • [8] E. A. Jorswieck and H. Boche, “Channel capacity and capacity-range of beamforming in MIMO wireless systems under correlated fading with covariance feedback,” IEEE Trans. Wireless Comm., vol. 3, pp. 1543-1553, September 2004.
  • [9] A. L. Moustakas and S. H. Simon, “Optimizing multiple-input single-output (MISO) communication systems with general Gaussian channels: nontrivial covariance and nonzero mean,” IEEE Trans. Info. Th., vol. 49, pp. 2770-2780, October 2003.
  • [10] M. Kang and M. S. Alouini, “Water-filling capacity and beamforming performance of MIMO systems with covariance feedback,” IEEE Work. on Sign. Proc.
Adv. in Wire. Comm., pp. 556-560, June 2003.
  • [11] S. H. Simon and A. L. Moustakas, “Optimizing MIMO antenna systems with channel covariance feedback,” IEEE Jour. Select. Areas in Comm., vol. 21, pp. 406-417, April 2003.
  • [12] S. M. Alamouti, “A simple transmit diversity technique for wireless communications,” IEEE Jour. Select. Areas in Comm., vol. 16, no. 8, pp. 1451-1458, October 1998.
  • [13] V. Tarokh, N. Seshadri, and A. R. Calderbank, “Space-time codes for high data rate wireless communication: Performance criterion and code construction,” IEEE Trans. Info. Th., vol. 44, pp. 744-65, March 1998.
  • [14] V. Tarokh, H. Jafarkhani, and A. R. Calderbank, “Space-time block codes from orthogonal designs,” IEEE Trans. Info. Th., vol. 45, pp. 1456-467, July 1999.
  • [15] E. N. Onggosanusi, A. G. Dabak, and T. A. Schmidl, “High rate space-time block coded scheme: performance and improvement in correlated fading channels,” Proc. IEEE Wireless Comm. and Net. Conf., vol. 1, pp. 194-199, March 2002.
  • [16] G. D. Durgin, Space-Time Wireless Channels, Prentice Hall, Upper Saddle River, NJ, USA, 2003
  • [17] D.-S. Shiu, G. J. Foschini, M. J. Gans, and J. M. Kahn, “Fading correlation and its effect on the capacity of multielement antenna systems,” IEEE Trans. Comm., vol. 48, no. 3, pp. 502-513, March 2000
  • [18] A. Forenza and R. W. Heath Jr., “Impact of antenna geometry on MIMO communication in indoor clustered channels,” Proc. IEEE Antennas and Prop. Symp., vol. 2, pp. 1700-1703, June 2004.
  • [19] E. A. Jorswieck and H. Boche, “Channel capacity and capacity-range of beamforming in MIMO wireless systems under correlated fading with covariance feedback,” IEEE Trans. Wireless Comm., vol. 3, pp. 1543-1553, September 2004
  • [20] R. W. Heath Jr. and A. Paulraj, “Switching between multiplexing and diversity based on constellation distance,” Proc. of Allerton Conf. on
    Figure US12237888-20250225-P00003
    208, Comm. Control and Comp., September 2000.
  • [21] S. Catreux, V. Erceg, D. Gesbert, and R. W. Heath Jr., “Adaptive modulation and MIMO coding for broadband wireless data networks,” IEEE Comm. Mag., vol. 2, pp. 108-115, June 2002.
  • [22] A. Forenza, A. Pandharipande, H. Kim, and R. W. Heath Jr., “Adaptive MIMO transmission scheme: Exploiting the spatial selectivity of wireless channels,” Proc. IEEE Veh. Technol. Conf., vol. 5, pp. 3188-3192, May 2005
  • [23] C. B. Chae, A. Forenza, R. W. Heath, Jr., M. R. McKay, and I. B. Collings, “Adaptive MIMO Transmission Techniques for Broadband Wireless Communication Systems,” IEEE Communications Magazine, vol. 48, no. 5, pp. 112-118, May 2010
  • [24] FCC, “Broadband action agenda”, National Broadband Plan, 2010 http://www.broadband.gov/plan/national-broadband-plan-action-agenda.pdf
  • [25], N. Delfas, F. Meunier, S. Flannery, T. Tsusaka, E. Gelblum and S. Kovler, “Mobile data wave: who dares to invest, wins”, Morgan Stanley Research Global, Jun. 13, 2012
  • [26] D. Goldman, “Sorry, America: your wireless airwaves are full”, CNN Money http://money.cnn.com/2012/02/21/technology/spectrum_crunch/index.htm
  • [27] P. Rysavy, “No silver bullets for FCC, NTIA spectrum challange”, Daily report for executives, Bloomberg BNA, August 2012 http://www.rysavy.com/Articles/2012_09_No_Spectrum_Silver_Bullets.pdf
  • [28] T. W. Hazlett, “Radio spectrum for a hungry wireless world”, Sep. 22, 2011
  • [29] B. J. Love, D. J. Love and J. V. Krogmeier, “Like deck chairs on the Titanic: why spectrum reallocation won't avert the coming data crunch but technology might keep the wireless industry afloat”, February 2012
  • [30] Qualcomm, “The 1000× data challenge, the latest on wireless, voice, services and chipset evolution”, 4G World, Oct. 31, 2012
  • [31] J. Lee, J.-K. Han, J. Zhang, “MIMO technologies in 3GPP LTE and LTE-advanced”, EURASIP Journal on Wireless Comm. and Net., Hindawi, May 2009
  • [32] 3GPP, TS 36.201, “Evolved Universal Terrestrial Radio Access (E-UTRA); LTE Physical Layer-General Description (Release 8)”
  • [33] 3GPP, TS 36.211, “Evolved Universal Terrestrial Radio Access (E-UTRA); Physical Channels and Modulation (Release 8)”
  • [34] 3GPP, TS 36.212, “Evolved Universal Terrestrial Radio Access (E-UTRA); Multiplexing and channel coding (Release 8)”
  • [35] 3GPP, TS 36.213, “Evolved Universal Terrestrial Radio Access (E-UTRA); Physical layer procedures (Release 8)”
  • [36] T. Yoo, N. Jindal, and A. Goldsmith, “Multi-antenna broadcast channels with limited feedback and user selection,” IEEE Journal on Sel. Areas in Communications, vol. 25, pp. 1478-91, July 2007.
  • [37] P. Ding, D. J. Love, and M. D. Zoltowski, “On the sum rate of channel subspace feedback for multi-antenna broadcast channels,” in Proc., IEEE Globecom, vol. 5, pp. 2699-2703, November 2005.
  • [38] N. Jindal, “MIMO broadcast channels with finite-rate feedback,” IEEE Trans. on Info. Theory, vol. 52, pp. 5045-60, November 2006.
  • [39] D. J. Love, R. W. Heath, Jr., V. K. N. Lau, D. Gesbert, B. D. Rao, and M. Andrews, “An Overview of Limited Feedback in Wireless Communication Systems,”IEEE Journal on Sel. Areas in Comm., Special Issue on Exploiting Limited Feedback in Tomorrow's Wireless Communication Networks, vol. 26, no. 8, pp. 1341-1365, October 2008.
    R. W. Heath, Jr., D. J. Love, V. K. N. Lau, D. Gesbert, B. D. Rao, and M. Andrews, “Exploiting Limited Feedback in Tomorrow's Wireless Communication Networks,”IEEE Journal on Sel. Areas in Comm., Special Issue on Exploiting Limited Feedback in Tomorrow's Wireless Communication Networks, vol. 26, no. 8, pp. 1337-1340, October 2008.
  • [41] D. J. Love, R. W. Heath, Jr., and T. Strohmer, “Grassmannian Beamforming for Multiple-Input Multiple-Output Wireless Systems,” IEEE Trans. on Info. Theory special issue on MIMO Communication, vol. 49, pp. 2735-2747, October 2003
  • [42] C. B. Chae, D. Mazzarese, N. Jindal and R. W. Heath, Jr., “Coordinated Beamforming with Limited Feedback in the MIMO Broadcast Channel”IEEE Journal on Sel. Areas in Comm., Special Issue on Exploiting Limited Feedback in Tomorrow's Wireless Comm. Networks, vol. 26, no. 8, pp. 1505-1515, October 2008
  • [43] A. Paulraj, “Is OFDMA, MIMO and OS the right stuff for mobile broadband?” http://www.ieeevtc.org/vtc2005fall/presentations/paulraj.pdf, September 2005
  • [44] J. Wannstrom, “Carrier aggregation explained”, 3GPP http://www.3gpp.org/Carrier-Aggregation-explained
  • [45] 3GPP, TS 36.808, “Evolved Universal Terrestrial Radio Access (E-UTRA); Carrier Aggregation (Release 10)”, v10.0.0, June 2012
  • [46] Nokia Siemens Networks, “2020: beyond 4G, radio evolution for the gigabit experience”, White Paper, 2011, www.nokiasiemensnetworks.com
  • [47] S. Marek, “AT&T's Rinne talks about carrier aggregation trials, small cells and more”, http://www.fiercebroadbandwireless.com/story/atts-rinne-talks-about-carrier-aggregation-trials-small-cells-and-more/2012-11-08
  • [48] M. Reed, “InterfereX”, Tech23, 2011 http://www.youtube.com/watch?v=YPpELm6iip8
  • [49] NICTA, “InterfereX”, http://www.nicta.com.au/research/archive/research_themes/networked_systems/interferex
  • [50] J. Duplicity, et al., “MU-MIMO in LTE systems”, EURASIP Journal on Wireless Communications and Netowrking, March 2011
  • [51] S. Feng and E. Seidel, “Self-organizing networks (SON) in 3GPP LTE”, Nomor research, May 2008
  • [52] NEC, “Self organizing networks”, White paper, February 2009
  • [53] U.S. Pat. No. 5,809,422, issued Sep. 15, 1998, entitled “Distributed microcellular communications system”, G. R. Raleigh, M. A. Pollack
  • [54] G. J. Foschini, H. C. Huang, K. Karakayali, R. A. Valenzuela, and S. Venkatesan. The Value of Coherent Base Station Coordination. InConference on Information Sciences and Systems(CISS 2005), March 2005
  • [55] M. K. Karakayali, G. J. Foschini, R. A. Valenzuela, and R. D. Yates, “On the maximum common rate achievable in a coordinated network,”Proc. of the Int'l Conf. on Communications(ICC'06), vol. 9, pp. 4333-4338, June 2006.
  • [56] M. K. Karakayali, G. J. Foschini, and R. A. Valenzuela, “Network coordination for spectrally efficient communications in cellular systems,”IEEE Wireless Communications Magazine, vol. 13, no. 4, pp. 56-61, August 2006.
  • [57] G. J. Foschini, M. K. Karakayali, and R. A. Valenzuela, “Coordinating multiple antenna cellular networks to achieve enormous spectral efficiency,”Proceedings of the IEEE, vol. 153, no. 4, pp. 548-555, August 2006.
  • [58] S. Venkatesan, A. Lozano, and R. Valenzuela, “Network MIMO: overcoming inter-cell interference in indoor wireless systems”, Proc. of Asilomar conf., pp. 83-87, November 2007
  • [59] S. Venkatesan, H. Huang, A. Lozano, and R. Valenzuela, “A WiMAX-based implementation of network MIMO for indoor wireless systems”, EURASIP Journal on Advances in Signal Processing, September 2009
  • [60] Y. Liang, R. Valenzuela, G. Foschini, D. Chizhik, and A. Goldsmith, “Interference suppression in wireless cellular networks through picocells”, ACSSC, pp. 1041-1045, November 2007
  • [61] A. Papadogiannis, H. J. Bang, D. Gesbert, and E. Hardouin, “Efficient selective feedback design for multicell cooperative networks”, IEEE Trans. On Vehicular Techn., pp. 196-205, vol. 60, n.1, January 2011
  • [62] I. F. Akyildiz, D. M. Guterrez-Estevez, E. C. Reyes, “The evolution to 4G cellular systems: LTE-Advanced”, Physical Comm., Elsevier, pp. 217-244, 2010
  • [63] A. Barbieri, P. Gaal, S. Geirhofer, T. Ji, D. Malladi, Y. Wei, and F. Xue, “Coordinated downlink multi-point communications in heterogeneous cellular networks”, (Qualcomm), Information Theory and App. Workshop, pp. 7-16, February 2012
  • [64] S. Parkvall, E. Dahlman, A. Furuskar, Y. Jading, M. Olsson, S. Wanstedt, and K. Zangi, “LTE-Advanced—evolving LTE towards IMT-Advanced”, (Ericsson) IEEE VTC, pp. 1-5, September 2008
  • [65] R. A. Monziano and T. W. Miller, Introduction to Adaptive Arrays, New York: Wiley, 1980.
  • [66] K. K. Wong, R. D. Murch, and K. B. Letaief, “A joint channel diagonalization for multiuser MIMO antenna systems,” IEEE Trans. Wireless Comm., vol. 2, pp. 773-786, July 2003;
  • [67] R. Chen, R. W. Heath, Jr., and J. G. Andrews, “Transmit Selection Diversity for Unitary Precoded Multiuser Spatial Multiplexing Systems with Linear Receivers,”IEEE Trans. on Signal Proc., vol. 55, no. 3, pp. 1159-1171, March 2007.
  • [68] M. Costa, “Writing on dirty paper,” IEEE Transactions on Information Theory, Vol. 29, No. 3, Page(s): 439-441, May 1983.
  • [69] G. Caire and S. Shamai, “On the achievable throughput of a multiantenna Gaussian broadcast channel,” IEEE Trans. Info. Th., vol. 49, pp. 1691-1706, July 2003.
  • [70] N. Jindal & A. Goldsmith, “Dirty Paper Coding vs. TDMA for MIMO Broadcast Channels”, IEEE Trans. on Info. Theory, vol. 51, pp. 1783-1794, May 2005
  • [71] M. Tomlinson, “New automatic equalizer employing modulo arithmetic,”Electronics Letters, Page(s): 138-139, March 1971.
  • [72] H. Miyakawa and H. Harashima, “A method of code conversion for digital communication channels with intersymbol interference,” Trans. of the Inst. of Electronic
  • [73] U. Erez, S. Shamai (Shitz), and R. Zamir, “Capacity and lattice-strategies for cancelling known interference,”Proceedings of International Symposium on Information Theory, Honolulu, Hawaii, November 2000.
  • [74] W. Yu and J. M. Cioffi, “Trellis Precoding for the Broadcast Channel”, IEEE Globecom, vol. 2, pp. 1344-1348, 2001
  • [75] B. M. Hochwald, C. B. Peel, and A. L. Swindlehurst, “A Vector-Perturbation Technique for Near-Capacity Multiantenna Multiuser Communication—Part I: Channel Inversion and Regularization”, IEEE Trans. On Communications, vol. 53, n.1, pp. 195-202, January 2005
  • [76] B. M. Hochwald, C. B. Peel, and A. L. Swindlehurst, “A Vector-Perturbation Technique for Near-Capacity Multiantenna Multiuser Communication—Part II: Perturbation”, IEEE Trans. On Comm., vol. 53, n. 3, pp. 537-544, March 2005
  • [77] S. Perlman and A. Forenza, “Distributed-input distributed-output (DIDO) wireless technology: a new approach to multiuser wireless”, Rearden Labs White Paper, July 2011, http://www.reardenwireless.com/110727-DIDO-A%20New%20Approach%20to%20Multiuser%20Wireless.pdf
  • [78] A. Vance, “Steve Perlman's wireless fix”, Businessweek, July 2011 http://www.businessweek.com/magazine/the-edison-of-silicon-valley-07272011.html
  • [79] M. Lindström (Ericsson), “LTE-Advanced Radio Layer 2 and RRC aspects”, 3GPP TSG-RAN WG2
  • [80] Anritsu, “LTE resource guide”, www.us.anritsu.com
  • [81] 3GPP, “Spatial Channel Model AHG (Combined ad-hoc from 3GPP & 3GPP2)”, SCM Text V6.0, Apr. 22, 2003
  • [82] J. Lee, “Introduction of LTE-Advanced DL/UL MIMO”, Samsung Electronics, September 2009
  • [83] E. Dahlman, S. Parkvall and J. Skold, “4G: LTE/LTE-Advanced for mobile broadband”, Elsevier, 2011
  • [84] J. Syren, “Overview on the 3GPP long term evolution physical layer”, Freescale White Paper, July 2007
  • [85] M. Baker, “LTE-Advanced physical layer”, Alcatel-Lucent, December 2009
  • [86] J. Xu, “LTE-Advanced signal generation and measurements using SystemVue”, Agilent Technologies
  • [87] X. Hou and H. Kayama, “Demodulation reference signal design and channel estimation for LTE-Advanced uplink”, DOCOMO, Adv. in Vehic. Netw. Tech., April 2011
  • [88] D. C. Chu, “Polyphase codes with good periodic correlation properties”, IEEE Trans. Info.
    Figure US12237888-20250225-P00004
    Theory, vol. 18, n. 4, pp. 531-532, July 1972
  • [89] A. Lozano, R. W. Heath and J. Andrews, “Fundamental limits of cooperation”, March 2012, http://arxiv.org/pdf/1204.0011.pdf
  • [90] J. G. Andrews, “Seven ways that HetNet are a cellular paradigm shift” http://users.ece.utexas.edu/˜jandrews/pubs/And_HetNet_CommMag2012_v3.pdf
  • [91] J-C. Guey, and L. D. Larsson, “Nodeling and evaluation of MIMO systems exploiting channel reciprocity in TDD mode”, 2004
  • [92] N. Tyler, B. Allen, and H. Aghvami, “Adaptive antennas: the calibration problem”, IEEE Comm. Mag., pp. 114-122, December 2004
  • [93] A. Bourdoux, B. Come, and N. Khaled, “Non-reciprocal transceivers in OFDM/SDMA systems: impact and mitigation”, IEEE, pp. 183-186, 2003
  • [94] M. Guillaud, D. T. M. Slock, and R. Knopp, “A practical method for wireless channel reciprocity exploitation through relative calibration”, IEEE Proc. Of Sign Proc., pp. 403-406, vol. 1, August 2005
  • [95] P. Zetterberg, “Experimental investigation of TDD reciprocity based zero-forcing transmit precoding”, EURASIP, June 2010
  • [96] P. Uthansakul, K. Attakitmongkol, N. Promsuvana, and Uthansakul, “MIMO antenna selection using CSI from reciprocal channel”, Int. Journ. Of Elect. And Info. Eng., 2010

Claims (30)

We claim:
1. A wireless transceiver station comprising:
(a) a first set of N antennas of the wireless transceiver station in a radio access network (RAN) within a coverage area, where N is an integer greater than 8; and
(b) hard-wired logic connected to each antenna in the first set of N antennas, which when executed causes the wireless transceiver station to perform a method comprising steps of:
(1) sending a plurality of training signals from at least a first antenna of the first set of N antennas to at least a second antenna of the first set of N antennas;
(2) processing the plurality of training signals to estimate a plurality of radio frequency calibration coefficients;
(3) determining uplink (UL) channel state information (CSI) in response to receiving a plurality of UL transmissions by one or more of the first set of N antennas from one or more of a second set of M antennas of a plurality of user equipment devices (UEs);
(4) preconditioning a matrix of UL CSI using the plurality of radio frequency calibration coefficients to obtain a matrix of downlink (DL) CSI; and
(5) based on the matrix of DL CSI, precoding a plurality of radio signals transmitted concurrently by the first set of N antennas, to cause the plurality of radio signals to deliberately interfere to create concurrent, non-interfering channels at a respective location of each antenna in the second set of M antennas.
2. The wireless transceiver station ofclaim 1, wherein the DL CSI is derived from the UL CSI using the radio frequency calibration coefficients and reciprocity between UL and DL channels.
3. The wireless transceiver station ofclaim 1, wherein the method further performs the step of:
determining the UL CSI from a plurality of UL transmissions received by one or more of the first set of N antennas from one or more of the second set of M antennas.
4. The wireless transceiver station ofclaim 1, wherein the RAN has no cells.
5. The wireless transceiver station ofclaim 1, wherein the hard-wired logic is also operatively connected to a third set of P antennas of a one or more of a plurality of other wireless transceiver stations that does not include the wireless transceiver station in the RAN.
6. A wireless transceiver station comprising:
(a) a first set of N antennas of the wireless transceiver station in a RAN within a coverage area, where N is an integer greater than 8; and
(b) a processor operatively connected to memory and operatively connected to each antenna in the first set of N antennas, wherein the memory includes instructions stored that in conjunction with hard-wired logic, when executed cause the wireless transceiver station to perform a method comprising steps of:
(1) sending a plurality of training signals from at least a first antenna of the first set of N antennas to at least a second antenna of the first set of N antennas;
(2) processing the plurality of training signals to estimate a plurality of radio frequency calibration coefficients;
(3) determining uplink (UL) channel state information (CSI) in response to receiving a plurality of UL transmissions by one or more of the first set of N antennas from one or more of a second set of M antennas of a plurality of user equipment devices (UEs);
(4) preconditioning a matrix of UL CSI using the plurality of radio frequency calibration coefficients to obtain a matrix of downlink (DL) CSI; and
(5) based on the matrix of DL CSI, precoding a plurality of radio signals transmitted concurrently by the first set of N antennas, to cause the plurality of radio signals to deliberately interfere to create concurrent, non-interfering channels at a respective location of each antenna in the second set of M antennas.
7. The wireless transceiver station ofclaim 6, wherein the DL CSI is derived from the UL CSI using the radio frequency calibration coefficients and reciprocity between UL and DL channels.
8. The wireless transceiver station ofclaim 6, wherein the method further performs the step of:
determining the UL CSI from a plurality of UL transmissions received by one or more of the first set of N antennas from one or more of the second set of M antennas.
9. The wireless transceiver station ofclaim 6, wherein the RAN has no cells.
10. The wireless transceiver station ofclaim 6, wherein the hard-wired logic is also operatively connected to a third set of P antennas of a one or more of a plurality of other wireless transceiver stations that does not include the wireless transceiver station in the RAN.
11. The wireless transceiver station ofclaim 6, wherein the processor is operatively connected to a third set of P antennas of a one or more of a plurality of other wireless transceiver stations that does not include the wireless transceiver station in the RAN.
12. A method comprising:
(1) sending a plurality of training signals from at least a first antenna of a first set of N antennas of a wireless transceiver station in a RAN within a coverage area, to at least a second antenna of the first set of N antennas, where N is an integer greater than 8;
(2) processing the plurality of training signals to estimate a plurality of radio frequency calibration coefficients;
(3) determining UL CSI in response to receiving a plurality of UL transmissions by one or more of the first set of N antennas from one or more of a second set of M antennas of a plurality of UEs;
(4) preconditioning a matrix of UL CSI using the plurality of radio frequency calibration coefficients to obtain a matrix of DL CSI; and
(5) based on the matrix of DL CSI, precoding a plurality of radio signals transmitted concurrently by the first set of N antennas, to cause the plurality of radio signals to deliberately interfere to create concurrent, non-interfering channels at a respective location of each antenna in the second set of M antennas.
13. The method ofclaim 12, further comprising the step of:
deriving the DL CSI from the UL CSI using the radio frequency calibration coefficients and reciprocity between UL and DL channels.
14. The method ofclaim 12, further comprising the step of:
determining the UL CSI from a plurality of UL transmissions received by one or more of the first set of N antennas from one or more of the second set of M antennas.
15. The method ofclaim 12, wherein the RAN has no cells.
16. The method ofclaim 12, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic.
17. The method ofclaim 12, wherein each antenna in the first set of N antennas is operatively connected to a processor operatively connected to memory.
18. The method ofclaim 12, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic and to a processor operatively connected to memory.
19. The method ofclaim 12, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic and the hard-wired logic is also operatively connected to a third set of P antennas of a second wireless transceiver station in the RAN, where P is an integer greater than 8.
20. The method ofclaim 12, wherein each antenna in the first set of N antennas is operatively connected to a processor operatively connected to memory and the processor is also operatively connected to a third set of P antennas of a second wireless transceiver station in the RAN, where P is an integer greater than 8.
21. A method comprising:
(1) estimating a plurality of radio frequency calibration coefficients for a first set of N antennas of a wireless transceiver station in a RAN within a coverage area where N is an integer greater than 8;
(2) determining uplink (UL) channel state information (CSI) in response to receiving a plurality of UL transmissions by one or more of the first set of N antennas from one or more of a second set of M antennas of a plurality of UEs;
(3) preconditioning a matrix of UL CSI using the plurality of radio frequency calibration coefficients to obtain a matrix of DL CSI;
(4) based on the matrix of DL CSI, precoding a plurality of radio signals transmitted concurrently by the first set of N antennas, to cause the plurality of radio signals to deliberately interfere to create concurrent, non-interfering channels at a respective location of each antenna in the second set of M antennas.
22. The method ofclaim 21, further comprising the step of:
deriving the DL CSI from the UL CSI using the radio frequency calibration coefficients and reciprocity between UL and DL channels.
23. The method ofclaim 21, further comprising the step of:
determining the UL CSI from a plurality of UL transmissions received by one or more of the first set of N antennas from one or more of the second set of M antennas.
24. The method ofclaim 21, wherein the RAN has no cells.
25. The method ofclaim 21, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic.
26. The method ofclaim 21, wherein each antenna in the first set of N antennas is operatively connected to a processor operatively connected to memory.
27. The method ofclaim 21, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic and to a processor operatively connected to memory.
28. The method ofclaim 21, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic and the hard-wired logic is also operatively connected to a third set of P antennas of a second wireless transceiver station in the RAN, where P is an integer greater than 8.
29. The method ofclaim 21, wherein each antenna in the first set of N antennas is operatively connected to a processor operatively connected to memory and the processor is also operatively connected to a third set of P antennas of a second wireless transceiver station in the RAN, where P is an integer greater than 8.
30. The method ofclaim 21, wherein each antenna in the first set of N antennas is operatively connected to hard-wired logic and to a processor operatively connected to memory and the hard-wired logic and the processor are operatively connected to a third set of P antennas of a second wireless transceiver station in the RAN, where P is an integer greater than 8.
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US17/498,666US11581924B2 (en)2013-03-152021-10-11Systems and methods for radio frequency calibration exploiting channel reciprocity in distributed input distributed output wireless communications
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Families Citing this family (69)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US10425135B2 (en)*2001-04-262019-09-24Genghiscomm Holdings, LLCCoordinated multipoint systems
US7917176B2 (en)*2006-02-142011-03-29Nec Laboratories America, Inc.Structured codebook and successive beamforming for multiple-antenna systems
US9735940B1 (en)2012-04-122017-08-15Tarana Wireless, Inc.System architecture for optimizing the capacity of adaptive array systems
US9252908B1 (en)2012-04-122016-02-02Tarana Wireless, Inc.Non-line of sight wireless communication system and method
MX354045B (en)*2012-05-042018-02-09Rearden LlcSystem and methods for coping with doppler effects in distributed-input distributed-output wireless systems.
RU2767777C2 (en)*2013-03-152022-03-21Риарден, ЛлкSystems and methods of radio frequency calibration using the principle of reciprocity of channels in wireless communication with distributed input - distributed output
US10499456B1 (en)2013-03-152019-12-03Tarana Wireless, Inc.Distributed capacity base station architecture for broadband access with enhanced in-band GPS co-existence
US10097329B2 (en)*2013-11-082018-10-09Spidercloud Wireless, Inc.Fractional frequency reuse schemes assigned to radio nodes in an LTE network
US9577922B2 (en)*2014-02-182017-02-21Commscope Technologies LlcSelectively combining uplink signals in distributed antenna systems
US10348394B1 (en)2014-03-142019-07-09Tarana Wireless, Inc.System architecture and method for enhancing wireless networks with mini-satellites and pseudollites and adaptive antenna processing
US20160014619A1 (en)*2014-07-092016-01-14Qualcomm IncorporatedMultiple cell joint detection and interference cancellation
US20170311321A1 (en)*2014-09-252017-10-26Ntt Docomo, Inc.Base station and user equipment
WO2016124979A1 (en)*2015-02-052016-08-11Telefonaktiebolaget Lm Ericsson (Publ)Dl comp scheduling for a heterogeneous cellular network
US10148510B2 (en)2015-03-022018-12-04Spidercloud Wireless, Inc.Topology discovery and management and SON orchestration
US10728806B2 (en)2015-03-022020-07-28Corning Optical Communications LLCEnhanced features for a gateway coordinating multiple small cell radio access networks
US10349313B2 (en)2015-03-022019-07-09Corning Optical Communications LLCEnhanced features for a gateway coordinating multiple small cell radio access networks
US11071032B2 (en)2015-03-022021-07-20Corning Optical Communications LLCGateway coordinating multiple small cell radio access networks
WO2016145451A2 (en)*2015-03-122016-09-15Spidercloud Wireless, Inc.Topology discovery and management and son orchestration
US10129805B2 (en)2015-03-122018-11-13Spidercloud Wireless, Inc.Hitless software upgrade for a virtualized gateway coordinating multiple small cell radio access networks
US10461961B2 (en)*2015-07-102019-10-29RF DSP Inc.Method for calibrating the channel state information of uplink and downlink in wireless multi-antenna systems
US9706411B2 (en)*2015-11-192017-07-11T-Mobile Usa, Inc.Small cell planning tool
CN106817772B (en)*2015-11-272020-04-14华为技术有限公司 A method and device for transmitting data
US10064098B2 (en)*2015-12-072018-08-28Google LlcDual connectivity and carrier aggregation at an IP layer
US10075268B1 (en)2016-02-112018-09-11Sprint Spectrum L.P.Systems and methods for performing carrier aggregation for a wireless device proximate to an antenna system
JP6153184B1 (en)*2016-02-222017-06-28三菱電機株式会社 Transmitting apparatus, receiving apparatus, control station, communication system, and transmission precoding method
US10250309B2 (en)*2016-03-242019-04-02Huawei Technologies, Co., Ltd.System and method for downlink channel estimation in massive multiple-input-multiple-output (MIMO)
US10236924B2 (en)*2016-03-312019-03-19Corning Optical Communications Wireless LtdReducing out-of-channel noise in a wireless distribution system (WDS)
EP3437197B1 (en)*2016-04-012022-03-09Cohere Technologies, Inc.Tomlinson-harashima precoding in an otfs communication system
CN107579764B (en)*2016-07-042022-09-30中兴通讯股份有限公司Uplink antenna selection method and device
EP3270522B1 (en)*2016-07-142023-06-28Indian Institute Of Technology HyderabadMethod and apparatus for a cluster specific cloud radio transmission and reception
US10201020B2 (en)*2016-09-192019-02-05National Instruments CorporationMulti-user random access procedures for massive MIMO wireless communication systems
US10033558B2 (en)2016-10-042018-07-24Qualcomm IncorporatedInter-eNB over-the-air calibration for reciprocity-based coordinated multipoint communications
CN114884621B (en)2016-11-092024-04-16瑞典爱立信有限公司Method and apparatus for link adaptation
CN106788631B (en)*2016-12-092020-05-22清华大学 A Massive MIMO Reciprocity Calibration Method Based on Local Calibration
US11632152B2 (en)*2017-01-092023-04-18Qualcomm IncorporatedOver-the-air calibration for reciprocity based UL MIMO transmission
JP7043506B2 (en)2017-02-062022-03-29アルティオスター ネットワークス, インコーポレイテッド Multi-technology aggregation architecture for long-term evolution communication systems
RU2019141040A (en)2017-06-142021-06-15Идак Холдингз, Инк. RELIABLE CONTROL SIGNALING
US10334534B2 (en)*2017-09-192019-06-25Intel CorporationMultiuser uplink power control with user grouping
CN109167621B (en)*2017-12-092019-11-19华为技术有限公司 Channel measurement method and user equipment
US11496198B2 (en)2017-12-092022-11-08Huawei Technologies Co., Ltd.Channel measurement method and user equipment
CN109905154B (en)2017-12-092024-09-17华为技术有限公司 Channel measurement method and user equipment
CN110062417B (en)*2018-01-192023-08-22华为技术有限公司 Method, device and system for cooperative transmission control
JP2021513801A (en)2018-02-142021-05-27テレフオンアクチーボラゲット エルエム エリクソン(パブル) Narrowband positioning reference signal setting
KR102110538B1 (en)*2018-02-282020-05-13엘지전자 주식회사Signal processing device and image display apparatus including the same
WO2019241436A1 (en)2018-06-142019-12-19Cohere Technologies, Inc.Co-existence of orthogonal time frequency space and long term evolution systems
WO2020014989A1 (en)*2018-07-202020-01-23Nec CorporationMethods, devices and computer readable media for uplink channel measurement
WO2020019336A1 (en)*2018-07-272020-01-30Nokia Shanghai Bell Co., Ltd.Method and apparatus for transmiting demodulation reference signal
US10763935B2 (en)2018-08-092020-09-01At&T Intellectual Property I, L.P.Generic feedback to enable reciprocity and over the air calibration for advanced networks
US11265891B1 (en)*2018-08-212022-03-01Raft Technologies Ltd.Priority based transmission
CN111106862A (en)2018-10-262020-05-05索尼公司Electronic device, communication method, and medium
CN113287277B (en)2019-01-092025-02-11交互数字专利控股公司 Method, device and system for enhanced control signaling for ultra-reliable transmission
US11569886B2 (en)*2019-04-012023-01-31Qualcomm IncorporatedNetwork-sensitive transmit diversity scheme
US11576060B2 (en)*2019-05-302023-02-07Qualcomm IncorporatedMaximum number of path loss or uplink spatial transmit beam reference signals for downlink or uplink positioning reference signals
JP7667929B2 (en)*2019-06-072025-04-24エムティーエフコム インク. A new high-capacity communication system.
EP4027531A4 (en)2019-09-302022-09-14Huawei Technologies Co., Ltd. CHANNEL MEASUREMENT METHOD AND COMMUNICATION DEVICE
CN110784901A (en)*2019-10-122020-02-11江苏久鑫铜业有限公司LTE system soft handover mechanism
DE102020200973A1 (en)2020-01-282021-07-29Airbus Defence and Space GmbH METHODS, SYSTEMS AND DEVICES FOR WIRELESS COMMUNICATION BASED ON DIGITAL OFDMA MODULATION SCHEMES
CN115699841A (en)*2020-06-152023-02-03凝聚技术公司 Spectrum Sharing Wireless System
CN112135288B (en)*2020-09-172025-03-11中兴通讯股份有限公司 Signal transmission method, device, access node, processing unit, system and medium
US20240064727A1 (en)*2021-01-152024-02-22Sony Group CorporationMethods and apparatuses for rf calibration based on guaranteed availability of uplink calibration gaps
US12021583B2 (en)*2021-02-192024-06-25Samsung Electronics Co., Ltd.Method and apparatus for modular MIMO
EP4413814A4 (en)*2021-10-072025-08-27Commscope Technologies Llc Systems and methods for using orthogonal demodulation reference signal ports with resource block reuse in a single cell
US20230131135A1 (en)*2021-10-262023-04-27Meta Platforms, Inc.Uplink MU-MIMO Functional Split Between Radio Unit And Distributed Unit
CN114070368B (en)*2021-10-272023-03-24国网电力科学研究院有限公司Uplink precoding method, system and storage medium
TWI841067B (en)*2021-12-012024-05-01歐姆佳科技股份有限公司 Radio frequency unit calibration and group measurement system and method
CN116599561B (en)*2023-02-102024-07-26北京环佳通信技术有限公司Wireless ad hoc network multiple-input multiple-output transmission method
US20240396596A1 (en)*2023-05-242024-11-28Samsung Electronics Co., Ltd.Integer and non-integer based vector perturbation precoding in mu-mimo
US12413271B2 (en)2023-06-232025-09-09Samsung Electronics Co., Ltd.Distributed MIMO calibration
EP4529029A1 (en)*2023-09-252025-03-26Comcast Cable Communications LLCMulti-access point coordinated beamforming

Citations (716)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4003016A (en)1975-10-061977-01-11The United States Of America As Represented By The Secretary Of The NavyDigital beamforming system
US4253193A (en)1977-11-051981-02-24The Marconi Company LimitedTropospheric scatter radio communication systems
US4564935A (en)1984-01-101986-01-14The United States Of America As Represented By The Secretary Of The Air ForceTropospheric scatter communication system having angle diversity
US4771289A (en)1982-05-281988-09-13Hazeltine CorporationBeamforming/null-steering adaptive array
JPH02210897A (en)1989-02-101990-08-22Oki Electric Ind Co LtdDaisy chain connection system
US5045862A (en)1988-12-281991-09-03Her Majesty The Queen In Right Of Canada, As Represented By The Minister Of CommunicationsDual polarization microstrip array antenna
US5088091A (en)1989-06-221992-02-11Digital Equipment CorporationHigh-speed mesh connected local area network
US5095500A (en)1989-12-071992-03-10Motorola, Inc.Cellular radiotelephone diagnostic system
US5097485A (en)1989-10-101992-03-17Hughes Aircraft CompanyHf high data rate modem
US5315309A (en)1991-09-061994-05-24Mcdonnell Douglas Helicopter CompanyDual polarization antenna
US5377183A (en)1992-04-131994-12-27Ericsson-Ge Mobile Communications Inc.Calling channel in CDMA communications system
US5400037A (en)1991-05-311995-03-21East; Thomas W. R.Self-focusing antenna array
US5483667A (en)1993-07-081996-01-09Northern Telecom LimitedFrequency plan for a cellular network
US5555257A (en)1994-01-111996-09-10Ericsson Ge Mobile Communications Inc.Cellular/satellite communications system with improved frequency re-use
GB2300547A (en)1995-05-021996-11-06Plessey Semiconductors LtdWireless LANs with frequency-hopping
US5600326A (en)1991-12-161997-02-04Martin Marietta Corp.Adaptive digital beamforming architecture and algorithm for nulling mainlobe and multiple sidelobe radar jammers while preserving monopulse ratio angle estimation accuracy
US5661765A (en)1995-02-081997-08-26Mitsubishi Denki Kabushiki KaishaReceiver and transmitter-receiver
US5742253A (en)1996-03-121998-04-21California Institute Of TechnologySystem and method for controlling the phase of an antenna array
US5809422A (en)1996-03-081998-09-15Watkins Johnson CompanyDistributed microcellular communications system
US5838671A (en)1995-06-231998-11-17Ntt Mobile Communications Network Inc.Method and apparatus for call admission control in CDMA mobile communication system
US5872814A (en)1997-02-241999-02-16At&T Wireless Services Inc.Method for linearization of RF transmission electronics using baseband pre-distortion in T/R compensation pilot signals
WO1999023767A1 (en)1997-10-311999-05-14Interdigital Technology CorporationCommunication station with multiple antennas
CA2011298C (en)1990-03-011999-05-25Adrian William AldenDual polarization dipole array antenna
JPH11252613A (en)1998-03-051999-09-17Tsushin Hoso KikoMobile communication system
US5983104A (en)1994-08-191999-11-09Telia AbMobile communications system with mobile unit speed identification features
US6005516A (en)1995-06-081999-12-21Metawave Communications CorporationDiversity among narrow antenna beams
US6005856A (en)1993-11-011999-12-21Omnipoint CorporationCommunication protocol for spread spectrum wireless communication system
US6014107A (en)1997-11-252000-01-11The United States Of America As Represented By The Secretary Of The NavyDual orthogonal near vertical incidence skywave antenna
US6041365A (en)1985-10-292000-03-21Kleinerman; AurelApparatus and method for high performance remote application gateway servers
US6052582A (en)1994-03-172000-04-18Endlink CorporationSectorized multi-function communication system
US6061023A (en)1997-11-032000-05-09Motorola, Inc.Method and apparatus for producing wide null antenna patterns
US6061021A (en)1996-10-222000-05-09Sagem SaLocatable mobile cellular telephony terminal
US6067290A (en)1999-07-302000-05-23Gigabit Wireless, Inc.Spatial multiplexing in a cellular network
WO2000054463A1 (en)1999-03-052000-09-14Telefonaktiebolaget Lm Ericsson (Publ)Method for bandwidth adapted utilization
US6232921B1 (en)2000-01-112001-05-15Lucent Technologies Inc.Method and system for adaptive signal processing for an antenna array
US6252912B1 (en)1997-12-242001-06-26General Dynamics Government Systems CorporationAdaptive predistortion system
JP2001217759A (en)2000-01-312001-08-10Matsushita Electric Ind Co Ltd Wireless communication device and wireless communication method using adaptive array
US6275738B1 (en)1999-08-192001-08-14Kai Technologies, Inc.Microwave devices for medical hyperthermia, thermotherapy and diagnosis
US20010031647A1 (en)1999-12-012001-10-18Scherzer Shimon B.Adaptive antenna array wireless data access point
US6308080B1 (en)1997-05-162001-10-23Texas Instruments IncorporatedPower control in point-to-multipoint systems
US6320853B1 (en)1999-09-272001-11-20Metawave Communications CorporationMethod of phase recovery in cellular communication systems
US6323823B1 (en)2000-07-172001-11-27Metawave Communications CorporationBase station clustered adaptive antenna array
US6330460B1 (en)2000-08-212001-12-11Metawave Communications CorporationSimultaneous forward link beam forming and learning method for mobile high rate data traffic
WO2002001732A2 (en)2000-06-022002-01-03Nokia CorporationClosed loop feedback system for improved down link performance
WO2002008785A1 (en)2000-07-262002-01-31Alenia Marconi Systems LimitedNear-vertical incidence hf radar
US20020027985A1 (en)2000-06-122002-03-07Farrokh Rashid-FarrokhiParallel processing for multiple-input, multiple-output, DSL systems
US20020041575A1 (en)2000-08-022002-04-11Mobile Satellite Ventures LlcCoordinated satellite-terrestrial frequency reuse
US6377782B1 (en)1999-03-012002-04-23Mediacell, Inc.Method and apparatus for communicating between a client device and a linear broadband network
US20020051433A1 (en)1999-12-232002-05-02Institut National De La Recherche ScientifiqueInterference suppression in CDMA systems
US6400761B1 (en)1999-09-152002-06-04Princeton UniversityMethod and apparatus for adaptively compensating channel or system variations in precoded communications system
US6411612B1 (en)1998-05-192002-06-25Harris CommunicationSelective modification of antenna directivity pattern to adaptively cancel co-channel interference in TDMA cellular communication system
WO2002054626A1 (en)2000-12-282002-07-11Nortel Networks LimitedMimo wireless communication system
US6421543B1 (en)1996-01-292002-07-16Ericsson Inc.Cellular radiotelephone base stations and methods using selected multiple diversity reception
US20020097705A1 (en)1999-05-282002-07-25Interdigital Technology CorporationBase station for code group synchronization
US6442151B1 (en)1999-04-062002-08-27Ericsson Inc.System and method for variable reassignment of transmission channels
US6445910B1 (en)1998-07-282002-09-03Siemens AktiengesellschaftReception diversity method, and a radio communication system using diversity reception
US6448937B1 (en)2000-04-252002-09-10Lucent Technologies Inc.Phased array antenna with active parasitic elements
US6453177B1 (en)1999-07-142002-09-17Metawave Communications CorporationTransmitting beam forming in smart antenna array system
US20020136169A1 (en)2001-01-192002-09-26Struhsaker Paul F.Wireless access system for allocating and synchronizing uplink and downlink of TDD frames and method of operation
JP2002281551A (en)2001-03-162002-09-27Mitsubishi Electric Corp Data transmission device, transmission permission device, data transmission method, and transmission permission method
US6459900B1 (en)1994-06-282002-10-01Littlefeet, Inc.Methods of operating arrangements of base transceiver stations in an area-covering network
US20020142723A1 (en)2001-02-092002-10-03Foschini Gerard J.Wireless communication system using multi-element antenna having a space-time architecture
US6473467B1 (en)2000-03-222002-10-29Qualcomm IncorporatedMethod and apparatus for measuring reporting channel state information in a high efficiency, high performance communications system
US20020168017A1 (en)2001-02-212002-11-14Antoine BerthetMethod and system of iterative coding/decoding of digital data streams coded by spatio-temporal combinations, in multiple transmission and reception
US6484030B1 (en)1998-03-092002-11-19AlcatelHandover from a microcell layer to a macrocell layer in a two-layer cell of a telecommunication network
WO2002093784A1 (en)2001-05-112002-11-21Qualcomm IncorporatedMethod and apparatus for processing data in a multiple-input multiple-output (mimo) communication system utilizing channel state information
US20020177447A1 (en)2001-05-162002-11-28Walton Jay RodMethod and apparatus for allocating uplink resources in a multiple-input multiple-output (MIMO) communication system
US20020181444A1 (en)1997-01-172002-12-05Anthony AcamporaHybrid universal broadband telecommunications using small radio cells interconnected by free-space optical links
WO2002099995A2 (en)2001-06-062002-12-12Qualcomm IncorporatedMethod and apparatus for antenna diversity in a wireless communication system
JP2002374224A (en)2001-04-092002-12-26Nippon Telegr & Teleph Corp <Ntt> OFDM signal transmission system, OFDM signal transmission device, and OFDM signal reception device
US20030003863A1 (en)2001-05-042003-01-02Jorn ThieleckeLink adaptation for MIMO transmission schemes
WO2003003604A1 (en)2001-06-292003-01-09Koninklijke Philips Electronics N.V.Radio communication system
US20030012315A1 (en)2001-07-062003-01-16John FanSystem and method for multistage error correction coding wirelessly transmitted information in a multiple antennae communication system
JP2003018054A (en)2001-07-022003-01-17Ntt Docomo Inc Wireless communication method and system, and communication device
US6519478B1 (en)1997-09-152003-02-11Metawave Communications CorporationCompact dual-polarized adaptive antenna array communication method and apparatus
US20030036359A1 (en)2001-07-262003-02-20Dent Paul W.Mobile station loop-back signal processing
JP2003051775A (en)2001-08-062003-02-21Matsushita Electric Ind Co Ltd W-CDMA / TDD base station and array antenna directivity control method
US20030043887A1 (en)2001-04-032003-03-06Hudson John E.Communication system and methods of estimating channel impulse responses therein
US20030045297A1 (en)2001-08-242003-03-06Dent Paul W.Communication system employing channel estimation loop-back signals
US20030043929A1 (en)2001-09-062003-03-06Hemanth SampathTransmit signal preprocessing based on transmit antennae correlations for muliple antennae systems
US20030048753A1 (en)2001-08-302003-03-13Ahmad JalaliMethod and apparatus for multi-path elimination in a wireless communication system
US20030065779A1 (en)2001-09-282003-04-03Dale MalikMethods and systems for a communications and information resource manager
US20030072379A1 (en)2001-10-152003-04-17Ketchum John W.Method and apparatus for determining power allocation in a MIMO communication system
JP2003134013A (en)2001-09-252003-05-09At & T CorpMulti-antenna/multi-receiver array diversity system
US20030092456A1 (en)2001-07-262003-05-15Dent Paul WilkinsonCommunication system employing transmit macro-diversity
US20030114165A1 (en)2001-12-072003-06-19Mills Donald CharlesMethod for enhanced wireless signal distribution
US20030114193A1 (en)2001-12-142003-06-19Samsung Electronics Co. Ltd.System and method for improving performance of an adaptive antenna array in a vehicular environment
US20030119556A1 (en)2001-12-242003-06-26Irfan KhanMethod of balancing backhaul delays for a series of daisy chained radio base stations
JP2003179948A (en)2001-12-102003-06-27Furukawa Electric Co Ltd:The Monitoring system for CATV system
US20030125026A1 (en)2001-12-282003-07-03Hitachi, Ltd.Radio terminal
US20030125040A1 (en)2001-11-062003-07-03Walton Jay R.Multiple-access multiple-input multiple-output (MIMO) communication system
US20030128658A1 (en)2002-01-082003-07-10Walton Jay RodResource allocation for MIMO-OFDM communication systems
US20030139196A1 (en)2002-01-232003-07-24Irina MedvedevReallocation of excess power for full channel-state information (CSI) multiple-input, multiple-output (MIMO) systems
US20030147362A1 (en)2002-02-052003-08-07Interdigital Technology CorporationMethod and apparatus for synchronizing base stations
US20030148738A1 (en)2002-02-072003-08-07Lucent Technologies Inc.Method and apparatus for feedback error detection in a wireless communications systems
US6611231B2 (en)2001-04-272003-08-26Vivato, Inc.Wireless packet switched communication systems and networks using adaptively steered antenna arrays
US20030161282A1 (en)2002-02-262003-08-28Irina MedvedevMultiple-input, multiple-output (MIMO) systems with multiple transmission modes
JP2003284128A (en)2002-03-222003-10-03Sanyo Electric Co Ltd Wireless device, spatial path control method, and spatial path control program
WO2003084092A2 (en)2002-03-272003-10-09Qualcomm, IncorporatedPrecoding for a multipath channel in a mimo system
EP1359683A1 (en)2002-04-302003-11-05Motorola, Inc.Wireless communication using multi-transmit multi-receive antenna arrays
US20030211843A1 (en)2002-05-132003-11-13Jun-Hyuk SongMethod for providing broadcast service in a CDMA mobile communication system
US20030214431A1 (en)2002-05-132003-11-20Hager James R.Methods and apparatus for determination of a filter center frequency
US6654590B2 (en)1998-05-012003-11-25Arraycomm, Inc.Determining a calibration function using at least one remote terminal
US20030220112A1 (en)2002-01-162003-11-27Engim, IncorporatedSystem and method for enabling the use of spatially distributed multichannel wireless access points/base stations
WO2003107582A2 (en)2002-06-142003-12-24ComsisMethod for decoding linear space-time codes in a multiple-antenna wireless transmission system, and decoder therefor
US20030235146A1 (en)2002-06-212003-12-25Yunnan WuBezout precoder for transmitter in MIMO communications network
US20040009755A1 (en)2002-05-212004-01-15Shousei YoshidaAntenna transmission and reception system
US6684366B1 (en)2000-09-292004-01-27Arraycomm, Inc.Multi-rate codec with puncture control
US6697644B2 (en)2001-02-062004-02-24Kathrein-Werke KgWireless link quality using location based learning
EP1392029A1 (en)2002-08-152004-02-25Kabushiki Kaisha ToshibaChannel tracking and signal detection in MIMO systems
US20040042556A1 (en)2002-08-272004-03-04Irina MedvedevCoded MIMO systems with selective channel inversion applied per eigenmode
US20040043784A1 (en)2002-06-062004-03-04Stanislaw CzajaPower control of plural packet data control channels
US20040051676A1 (en)2002-08-302004-03-18Travis Edward C.Signal cross polarization system and method
US20040063450A1 (en)2002-09-302004-04-01Uhlik Christopher R.Transmitting signals on a channel used for traffic and access in a communications system
JP2004104206A (en)2002-09-052004-04-02Sony CorpSpace division multiplex access control method, wireless communication system, base station, and mobile station
US6718180B1 (en)2000-10-242004-04-06Telefonaktiebolaget Lm Ericsson (Publ)Power level convergence in a communications system
US6718184B1 (en)2000-09-282004-04-06Lucent Technologies Inc.Method and system for adaptive signal processing for an antenna array
US20040082356A1 (en)2002-10-252004-04-29Walton J. RodneyMIMO WLAN system
US20040095907A1 (en)2000-06-132004-05-20Agee Brian G.Method and apparatus for optimization of wireless multipoint electromagnetic communication networks
US20040097197A1 (en)2002-02-142004-05-20Carsten JunckerMobile station speed estimation
US6760603B1 (en)1997-09-152004-07-06Kathrein-Werke KgCompact dual-polarized adaptive antenna array communication method and apparatus
US6760388B2 (en)2001-12-072004-07-06Qualcomm IncorporatedTime-domain transmit and receive processing with channel eigen-mode decomposition for MIMO systems
US6760599B1 (en)2000-09-292004-07-06Arraycomm, Inc.Method and apparatus for selecting a base station
US20040131011A1 (en)2002-09-262004-07-08Kabushiki Kaisha ToshibaTransmission signals, method and apparatus
US6763225B1 (en)1999-05-262004-07-13Motorola, Inc.Phase alignment transmit diversity system for radio communications systems
US20040136349A1 (en)2002-10-252004-07-15Walton J. RodneyMIMO system with multiple spatial multiplexing modes
CN1516370A (en)2003-01-032004-07-28华为技术有限公司 An Adaptive Space-Time Closed-Loop Transmit Diversity Method and System
US6771706B2 (en)2001-03-232004-08-03Qualcomm IncorporatedMethod and apparatus for utilizing channel state information in a wireless communication system
US20040152480A1 (en)2002-11-222004-08-05Telefonaktiebolaget Lm Ericsson (Publ)Method and apparatus for generating a neighbor cell list
WO2004073210A1 (en)2003-02-112004-08-26Ipwireless, Inc.Method, base station and mobile station for tdd operation in a communication system
US20040170430A1 (en)2001-06-212004-09-02Alexei GorokhovMimo transmission system in a radio communications network
WO2004075454A2 (en)2003-02-182004-09-02Extricom Ltd.Multi-channel wlan transceiver with antenna diversity
US20040176097A1 (en)2003-02-062004-09-09Fiona WilsonAllocation of sub channels of MIMO channels of a wireless network
US6791508B2 (en)2002-06-062004-09-14The Boeing CompanyWideband conical spiral antenna
US20040179627A1 (en)2002-10-252004-09-16Ketchum John W.Pilots for MIMO communication systems
US6794939B2 (en)2002-05-312004-09-21Lucent Technologies Inc.Signal predistortion using a combination of multiple predistortion techniques
US6795413B1 (en)2000-09-292004-09-21Arraycomm, Inc.Radio communications system in which traffic is transmitted on the broadcast channel
US20040185909A1 (en)2003-03-202004-09-23Angeliki AlexiouLinear transformation of symbols to at least partially compensate for correlation between antennas in space time block coded systems
US6799026B1 (en)1999-11-092004-09-28Kathrein-Werke KgHandset diversity in wireless communications system
US20040190636A1 (en)2003-03-312004-09-30Oprea Alexandru M.System and method for wireless communication systems
US6801580B2 (en)2002-04-092004-10-05Qualcomm, IncorporatedOrdered successive interference cancellation receiver processing for multipath channels
US6804311B1 (en)1999-04-082004-10-12Texas Instruments IncorporatedDiversity detection for WCDMA
US20040203347A1 (en)2002-03-122004-10-14Hung NguyenSelecting a set of antennas for use in a wireless communication system
US20040203987A1 (en)2002-07-292004-10-14Amit ButalaReducing interference with a multiple format channel in a communication system
US20040209579A1 (en)2003-04-102004-10-21Chandra VaidyanathanSystem and method for transmit weight computation for vector beamforming radio communication
WO2004095719A2 (en)2003-04-222004-11-04Interdigital Technology CorporationMethod and system for integrating resource allocation between time division duplex and frequency division duplex in wireless communication systems
US20040252632A1 (en)2002-08-222004-12-16Andre BourdouxMethod and apparatus for multi-user multi-input multi-output transmission
US6834043B1 (en)2000-07-242004-12-21Motorola, Inc.Method and device for exploiting transmit diversity in time varying wireless communication systems
US6836673B1 (en)2000-12-222004-12-28Arraycomm, Inc.Mitigating ghost signal interference in adaptive array systems
US20050003865A1 (en)2003-07-032005-01-06Roc LastingerMethod and apparatus for high throughput multiple radio sectorized wireless cell
US6847832B2 (en)2001-03-092005-01-25Kathrein-Werke KgSystem and method for providing phase matching with optimized beam widths
US20050020237A1 (en)2003-07-162005-01-27Angeliki AlexiouMethod and apparatus for transmitting signals in a multi-antenna mobile communications system that compensates for channel variations
US20050024231A1 (en)2003-06-132005-02-03Baker Hughes IncorporatedApparatus and methods for self-powered communication and sensor network
US20050031047A1 (en)2003-08-082005-02-10Maltsev Alexander A.Adaptive multicarrier wireless communication system, apparatus and associated methods
JP2005039822A (en)2003-07-142005-02-10Lucent Technol IncMethod and apparatus for adaptive and online assignment in hierarchical overlay network
US20050043031A1 (en)2003-08-182005-02-24Samsung Electronics Co., Ltd.Apparatus and method for scheduling resource in a multiuser MIMO radio communication system
US20050041751A1 (en)2002-12-162005-02-24France TelecomSignal transmission multiple antenna method and device
US20050042988A1 (en)2003-08-182005-02-24AlcatelCombined open and closed loop transmission diversity system
US20050041750A1 (en)2003-08-192005-02-24Kin Nang LauSystem and method for multi-access MIMO channels with feedback capacity constraint
US20050047515A1 (en)2003-08-272005-03-03Walton J. RodneyFrequency-independent spatial processing for wideband MISO and MIMO systems
US20050058217A1 (en)2003-09-152005-03-17Sumeet SandhuMulticarrier transmitter, multicarrier receiver, and methods for communicating multiple spatial signal streams
US20050075110A1 (en)2001-05-152005-04-07Harri PostiMethod of channel allocation for a mobile terminal moving in a cellular communication network
US20050085267A1 (en)2001-12-262005-04-21Paul LemsonModular base station antenna control system
US6888809B1 (en)2000-01-132005-05-03Lucent Technologies Inc.Space-time processing for multiple-input, multiple-output, wireless systems
US6888899B2 (en)1996-08-292005-05-03Cisco Technology, Inc.Spatio-temporal processing for communication
US6888795B2 (en)2000-12-302005-05-03Durham Logistics LlcResource allocation in a circuit switched network
US20050096058A1 (en)2003-10-292005-05-05Robert WarnerMethod and system for an adaptive wireless communication system optimized for economic benefit
US20050101259A1 (en)2003-11-062005-05-12Wen TongCommunication channel optimization systems and methods in multi-user communication systems
US20050101352A1 (en)2003-11-102005-05-12Telefonaktiebolaget Lm Ericsson (Publ),Method and apparatus for a multi-beam antenna system
US6895258B1 (en)2000-08-142005-05-17Kathrein-Werke KgSpace division multiple access strategy for data service
US20050111406A1 (en)2003-11-212005-05-26Nokia CorporationMulti-user multicarrier allocation in a communication system
US20050111599A1 (en)2003-11-212005-05-26Walton J. R.Multi-antenna transmission for spatial division multiple access
JP2005159448A (en)2003-11-202005-06-16National Institute Of Information & Communication Technology Broadband wireless communication system
US20050148368A1 (en)2002-10-252005-07-07Stefan ScheinertSystem and method for automatically configuring and integrating a radio base station into an existing wireless cellular communication network with full bi-directional roaming and handover capability
WO2005064871A1 (en)2003-12-302005-07-14Telefonaktiebolaget Lm Ericsson (Publ)Calibration method to achieve reciprocity of bidirectional communication channels
US6920192B1 (en)2000-08-032005-07-19Lucent Technologies Inc.Adaptive antenna array methods and apparatus for use in a multi-access wireless communication system
US6925127B1 (en)1997-07-222005-08-02Ericsson Inc.Method and apparatus for subtracting multiple rays of multiple interfering received signals
US20050169396A1 (en)2002-05-272005-08-04Paul-Walter BaierMethod for transmitting information in a mimo radio communication system and radio communication system
US20050174977A1 (en)2004-02-062005-08-11M-Stack LimitedApparatus and method for operating a communications device in a mobile communications network
US20050186991A1 (en)2004-02-102005-08-25Bateman Blaine R.Wireless access point with enhanced coverage
US6956537B2 (en)2001-09-122005-10-18Kathrein-Werke KgCo-located antenna array for passive beam forming
US20050232135A1 (en)2004-03-312005-10-20Manabu MukaiRadio communication system, terminal apparatus and base station apparatus
US20050239406A1 (en)1997-05-232005-10-27Shattil Steve JCancellation system for frequency reuse in microwave communications
US20050259627A1 (en)2004-05-192005-11-24Jian SongMethod and system for providing multi-input-multi-output (MIMO) downlink transmission
CN1703113A (en)2004-05-282005-11-30株式会社Ntt都科摩A frequency selection apparatus, a mobile communications system, and a multi-band frequency resource management method
US20050265273A1 (en)2000-08-022005-12-01Karabinis Peter DIntegrated or autonomous system and method of satellite-terrestrial frequency reuse using signal attenuation and/or blockage, dynamic assignment of frequencies and/or hysteresis
US6978150B2 (en)2000-06-302005-12-20Nec CorporationApparatus and method for transmission power balance adjustment in a mobile cellular system
US20050287962A1 (en)2004-06-252005-12-29Mehta Neelesh BRF-based antenna selection in MIMO systems
CA2856772A1 (en)2004-07-302006-01-30Rearden, LlcSystem and method for distributed input distributed output wireless communications
US6996060B1 (en)2001-03-202006-02-07Arraycomm, Inc.Closing a communications stream between terminals of a communications system
US20060032979A1 (en)2004-06-302006-02-16The Boeing CompanyAircraft interior configuration detection system
US7006043B1 (en)2004-01-162006-02-28The United States Of America, As Represented By The Secretary Of The ArmyWideband circularly polarized single layer compact microstrip antenna
US20060046658A1 (en)2002-09-052006-03-02Cruz Rene LScheduling methods for wireless networks
US7013144B2 (en)1999-11-242006-03-14Fujitsu LimitedBase station control equipment, mobile station equipment, and radio communication system
US20060056855A1 (en)2002-10-242006-03-16Masao NakagawaIlluminative light communication device
US7016649B1 (en)2000-03-172006-03-21Kathrein-Werke KgSpace-time and space-frequency hopping for capacity enhancement of mobile data systems
US20060062180A1 (en)2004-09-212006-03-23Sayeedi Shahab MMethod and apparatus to facilitate inter-AN HRPD hard handoff
US7020490B2 (en)2001-01-302006-03-28Koninklijke Philips Electronics N.V.Radio communication system
US7027523B2 (en)2001-06-222006-04-11Qualcomm IncorporatedMethod and apparatus for transmitting data in a time division duplexed (TDD) communication system
US7027837B1 (en)2001-09-272006-04-11Arraycomm Llc.Antenna array for point-to-point microwave radio system
US7027415B1 (en)2001-03-202006-04-11Arraycomm, Inc.Dynamic allocation and de-allocation of multiple communication channels for bandwidth on-demand
US7031754B2 (en)2001-06-112006-04-18Kathrein-Werke KgShapable antenna beams for cellular networks
US7031336B2 (en)2002-08-262006-04-18Colubris Networks, Inc.Space-time-power scheduling for wireless networks
WO2006049417A1 (en)2004-11-012006-05-11Lg Electronics Inc.A method of transmitting a precoding matrix in a multi-input multi-output (mimo) system
US20060098568A1 (en)2004-11-092006-05-11Samsung Electronics Co., Ltd.Method for supporting various multi-antenna schemes in BWA system using multiple antennas
US20060098754A1 (en)2004-10-212006-05-11Samsung Electronics Co., Ltd.Beam and power allocation method for MIMO communication system
WO2006063138A2 (en)2004-12-072006-06-15Adaptix, Inc.Cooperative mimo in multicell wireless networks
US7068704B1 (en)2001-09-262006-06-27Itt Manufacturing Enterpprises, Inc.Embedded chirp signal for position determination in cellular communication systems
US7072413B2 (en)2001-05-172006-07-04Qualcomm, IncorporatedMethod and apparatus for processing data for transmission in a multi-channel communication system using selective channel inversion
US7072693B2 (en)2002-08-052006-07-04Calamp Corp.Wireless communications structures and methods utilizing frequency domain spatial processing
US20060146755A1 (en)2004-12-302006-07-06Ntt Docomo Inc.MIMO communication system and method capable of adaptive user scheduling
US7075485B2 (en)2003-11-242006-07-11Hong Kong Applied Science And Technology Research Institute Co., Ltd.Low cost multi-beam, multi-band and multi-diversity antenna systems and methods for wireless communications
US7079809B1 (en)2002-02-072006-07-18Kathrein-Werke KgSystems and methods for providing improved wireless signal quality using diverse antenna beams
US20060159160A1 (en)2005-01-142006-07-20Qualcomm IncorporatedOptimal weights for MMSE space-time equalizer of multicode CDMA system
US20060159187A1 (en)2005-01-142006-07-20Haifeng WangSystem and method for utilizing different known guard intervals in single/multiple carrier communication systems
WO2006078019A1 (en)2005-01-242006-07-27Ntt Docomo, Inc.Mobile communication terminal and method for controlling activation of multi-path interference removing apparatus
US20060165120A1 (en)2005-01-272006-07-27Karabinis Peter DSatellite/terrestrial wireless communications systems and methods using disparate channel separation codes
US7085240B2 (en)2000-10-032006-08-01Kathrein-Werke KgDirected maximum ratio combining and scheduling of high rate transmission for data networks
CN1820424A (en)2003-06-022006-08-16高通股份有限公司 Receiving device with hybrid equalizer and RAKE receiver and corresponding receiving method
US7096040B1 (en)2001-06-112006-08-22Kathrein-Werke KgPassive shapable sectorization antenna gain determination
US20060199584A1 (en)2003-04-242006-09-07Telefonaktiebolaget Lm Ericsson (Publ)Distributed radio units
US20060198461A1 (en)2005-03-022006-09-07Shigenori HayaseWireless data communication system and wireless data communication method
US20060203708A1 (en)2005-03-112006-09-14Hemanth SampathSystems and methods for beamforming feedback in multi antenna communication systems
US20060209979A1 (en)2005-01-072006-09-21Kabushiki Kaisha ToshibaFrequency offset tracking
US7116723B2 (en)2000-07-212006-10-03Samsung Electronics Co., Ltd.Closed loop transmit diversity method and apparatus using complex basis vector sets for antenna selection
US7117014B1 (en)2001-08-172006-10-03Kathrein-Werke KgSystem and method for selecting optimized beam configuration
US7120440B2 (en)2003-05-232006-10-10Samsung Electronics Co., Ltd.Velocity estimation apparatus and method using level crossing rate
WO2006110737A2 (en)2005-04-072006-10-19Interdigital Technology CorporationMethod and apparatus for antenna mapping selection in mimo-ofdm wireless networks
WO2006113872A1 (en)2005-04-192006-10-26Qualcomm IncorporatedChannel quality reporting for adaptive sectorization
US7139527B2 (en)2001-12-282006-11-21Hitachi, Ltd.Multi point wireless transmission repeater system and wireless equipments
US7142154B2 (en)2002-01-102006-11-28Roke Manor Research LimitedTime and frequency synchronizations of equipment at different locations
US20060270359A1 (en)2005-05-242006-11-30Magnolia Broadband Inc.Determining a phase adjustment in accordance with power trends
US20060281421A1 (en)2005-06-142006-12-14Interdigital Technology CorporationMethod and apparatus for generating feedback information for transmit power control in a multiple-input multiple-output wireless communication system
US20060287743A1 (en)2005-06-162006-12-21Hemanth SampathNegotiated channel information reporting in a wireless communication system
US7154936B2 (en)2001-12-032006-12-26Qualcomm, IncorporatedIterative detection and decoding for a MIMO-OFDM system
US7154960B2 (en)2002-12-312006-12-26Lucent Technologies Inc.Method of determining the capacity of each transmitter antenna in a multiple input/multiple output (MIMO) wireless system
US20060292990A1 (en)2005-06-212006-12-28Karabinis Peter DCommunications systems including adaptive antenna systems and methods for inter-system and intra-system interference reduction
US7158493B1 (en)2000-09-292007-01-02Arraycomm, LlcRadio communications system with a minimal broadcast channel
US20070004337A1 (en)2005-06-292007-01-04Ashim BiswasMulticarrier receiver and method for carrier frequency offset correction and channel estimation for receipt of simultaneous transmissions over a multi-user uplink
US20070015526A1 (en)2005-07-132007-01-18Hansen Christopher JChannel reciprocity matrix determination in a wireless MIMO communication system
US7167684B2 (en)2002-06-202007-01-23Qualcomm IncorporatedRate control for multi-channel communications systems
US20070025464A1 (en)2004-07-302007-02-01Perlman Stephen GSystem and method for spatial-multiplexed tropospheric scatter communications
US7181167B2 (en)2001-11-212007-02-20Texas Instruments IncorporatedHigh data rate closed loop MIMO scheme combining transmit diversity and data multiplexing
US7184492B2 (en)2003-02-102007-02-27Ericsson Inc.Using antenna arrays in multipath environment
WO2007024913A1 (en)2005-08-222007-03-01Qualcomm IncorporatedMethod and apparatus for selection of virtual antennas
WO2007027825A2 (en)2005-08-302007-03-08Qualcomm IncorporatedTransmission mode selection, precoding and sdma support
JP2007060106A (en)2005-08-232007-03-08Tokyo Institute Of Technology IQ imbalance compensation method in MIMO-OFDM communication system
US20070054633A1 (en)2005-09-082007-03-08Nokia CorporationData transmission scheme in wireless communication system
US20070058590A1 (en)2005-06-242007-03-15Samsung Electronics Co., Ltd.User selection method in a zero-forcing beamforming algorithm
US7194006B2 (en)2000-07-182007-03-20Kathrein-Werke KgDirected maximum ratio combining methods and systems for high data rate traffic
US7193991B2 (en)2001-05-012007-03-20Koninklijke Philips Electronics N.V.Radio communication arrangements
US20070064823A1 (en)2005-09-162007-03-22Samsung Electronics Co., Ltd.Apparatus and method for calibrating channel in radio communication system using multiple antennas
US20070066331A1 (en)2005-09-212007-03-22Jun ZhengMethod and system for a double search user group selection scheme with range reduction in TDD multiuser MIMO downlink transmission
US20070082674A1 (en)2001-10-112007-04-12Pedersen Erling JAdaptive broadband platforms and methods of operation
US20070086400A1 (en)2005-10-142007-04-19Masaaki ShidaRadio communication device
US7209511B2 (en)2001-08-312007-04-24Ericsson Inc.Interference cancellation in a CDMA receiving system
US20070093273A1 (en)2005-10-082007-04-26AlcatelDistributed base station, communication system, and signal transmission method thereof
US20070093274A1 (en)2005-10-242007-04-26Hamid JafarkhaniApparatus and method for a system architecture for multiple antenna wireless communication systems using round robin channel estimation and transmit beam forming algorithms
WO2007046621A1 (en)2005-10-172007-04-26Samsung Electronics Co., Ltd.Apparatus and method for transmitting/receiving data in multi-user multi-antenna communication system
US20070099665A1 (en)2005-10-102007-05-03Samsung Electronics Co., Ltd.Apparatus and method for improving reception performance in a smart antenna system
US7218689B2 (en)2001-11-292007-05-15Qualcomm IncorporatedMethod and apparatus for determining the log-likelihood ratio with precoding
US7224942B2 (en)2001-07-262007-05-29Telefonaktiebolaget Lm Ericsson (Publ)Communications system employing non-polluting pilot codes
US7227855B1 (en)2001-03-202007-06-05Arraycomm LlcResource allocation in a wireless network
US20070135125A1 (en)2005-12-102007-06-14Samsung Electronics Co., Ltd.Apparatus and method for hard handover in a wireless communication system
US20070132653A1 (en)2005-12-082007-06-14University Of South FloridaZero-Order Energy Smart Antenna and Repeater
US7242964B1 (en)2000-09-282007-07-10Lucent Technologies Inc.Shaping of EM field for transmission to multiple terminals
US7248645B2 (en)2002-04-302007-07-24Motorola, Inc.Wireless transmission using an adaptive transmit antenna array
US7248879B1 (en)2001-05-162007-07-24Qualcomm IncorporatedMethod and apparatus for allocating downlink resources in a multiple-input multiple-output (MIMO) communication system
US20070183362A1 (en)2006-02-062007-08-09Motorola, Inc.Method and apparatus for performing spatial-division multiple access
CN101031129A (en)2006-03-012007-09-05中兴通讯股份有限公司Apparatus and method for inhibiting interference between wireless systems
US20070206504A1 (en)*2006-03-012007-09-06Interdigital Technology CorporationMethod and apparatus for calibration and channel state feedback to support transmit beamforming in a mimo system
US7269231B2 (en)2002-05-312007-09-11Lucent Technologies Inc.System and method for predistorting a signal using current and past signal samples
US20070211747A1 (en)2006-02-212007-09-13Samsung Electronics Co., Ltd.Adaptive channel prediction apparatus and method for performing uplink pre-equalization depending on downlink channel variation in OFDM/TDD mobile communication system
US7272294B2 (en)2006-02-212007-09-18Fujitsu LimitedWireless communication system and receiving device
US20070220151A1 (en)2006-03-202007-09-20Qinghua LiDownlink resource allocation and mapping
WO2007114654A1 (en)2006-04-062007-10-11Lg Electronics Inc.Method for transmitting channel state information in multiple antenna system
US20070242782A1 (en)2006-03-132007-10-18Samsung Electronics Co., Ltd.Channel estimation apparatus and method for interference cancellation in mobile communication system
US20070243871A1 (en)2001-08-202007-10-18Qualcomm, IncorporatedMethod and system for a handoff in a broadcast communication system
US20070249380A1 (en)2006-04-192007-10-25Motorola, Inc.Apparatus and method for broadcasting data
US20070254602A1 (en)2006-05-012007-11-01Qinghua LiChannel feedback using channel state predictions based also on delays
US20070253508A1 (en)2006-04-192007-11-01Samsung Electronics Co., Ltd.Apparatus and method for selecting effective channel in a multi-user MIMO system
US20070258531A1 (en)2006-05-042007-11-08Winbond Electronics CorporationAdaptive Quantization Method and Apparatus For An OFDM Receiver
US20070263736A1 (en)2004-09-282007-11-15Matsushita Electric Industrial Co., Ltd.Multicarrier Communication Apparatus and Multicarrier Communication Method
US7299071B1 (en)1997-12-102007-11-20Arraycomm, LlcDownlink broadcasting by sequential transmissions from a communication station having an antenna array
US20070280116A1 (en)2006-06-052007-12-06Hong Kong University Of Science And TechnologyAdaptive multi-user mimo non-cooperative threshold-based wireless communication system using limited channel feedback
US20070286298A1 (en)2006-06-092007-12-13Choi Yang-SeokDoppler frequency determination for mobile wireless devices
US7310680B1 (en)1996-12-312007-12-18Broadware Technologies, Inc.Video and audio streaming for multiple users
US7313403B2 (en)2003-08-062007-12-25Hong Kong Applied Science And Technology Research Institute Co., Ltd.Location positioning in wireless networks
US20080013644A1 (en)2006-07-142008-01-17Klaus HuglData processing method, data transmission method, data reception method, apparatus, codebook, computer program product, computer program distribution medium
JP2008035287A (en)2006-07-282008-02-14Kyocera Corp Wireless communication method, wireless base station, wireless communication terminal, and base station control device
US7333540B2 (en)2002-10-152008-02-19Kabushiki Kaisha ToshibaEqualisation apparatus and methods
US7336626B1 (en)2001-09-282008-02-26Arraycomm, IncOperating time division duplex (TDD) wireless systems in paired spectrum (FDD) allocations
US20080051150A1 (en)2006-08-232008-02-28Fujitsu LimitedWireless communication apparatus and wireless communication method
US7339906B1 (en)2001-03-202008-03-04Arraycomm, LlcOpening a communications stream between a user terminal and a base station
US7339908B2 (en)2001-07-312008-03-04Arraycomm, Llc.System and related methods to facilitate delivery of enhanced data services in a mobile wireless communications environment
US7352774B2 (en)2002-09-302008-04-01Arraycomm, LlcMultiplexing different types of data sequences
US7352819B2 (en)2003-12-242008-04-01Intel CorporationMultiantenna communications apparatus, methods, and system
US20080080631A1 (en)2004-07-302008-04-03Antonio ForenzaSystem and method for ditributed input-distributed output wireless communications
US20080080635A1 (en)2006-10-022008-04-03Nokia CorporationAdvanced feedback signaling for multi-antenna transmission systems
US20080089396A1 (en)2006-09-182008-04-17Hongyuan ZhangCalibration Correction for Implicit Beamforming in a Wireless MIMO Communication System
US7363376B2 (en)2001-07-312008-04-22Arraycomm LlcMethod and apparatus for generating an identifier to facilitate delivery of enhanced data services in a mobile computing environment
US7366245B2 (en)2004-09-102008-04-29Intel CorporationCalibration in MIMO systems
US7366519B2 (en)2002-10-212008-04-29Hong Kong Applied Science And Technology Research Institute Co., Ltd.Systems and methods for managing wireless communications using link space information
US7366202B2 (en)2003-12-082008-04-29Colubris Networks, Inc.System and method for interference mitigation for wireless communication
US20080102881A1 (en)2006-10-252008-05-01Samsung Electronics Co., Ltd.Method and apparatus for adaptively allocating transmission power for beam-forming combined with OSTBCs in a distributed wireless communication system
US7369841B1 (en)2001-09-282008-05-06Durham Logistics LlcWireless network infrastructure
US7369876B2 (en)2003-03-042008-05-06Samsung Electronics Co., Ltd.Apparatus and method for estimating a velocity of a mobile station in a mobile communication system
US20080107135A1 (en)2003-04-172008-05-08WavecomRadio Data Transmission Method Employing Several Different Pilot Patterns, Corresponding Base Station, Mobile, System and Reception Method
US20080117961A1 (en)2006-11-222008-05-22Samsung Electronics Co.; LtdMethod and apparatus of adaptively allocating transmission power for beamforming combined with orthogonal space-time block codes based on symbol error rate in distributed wireless communication system
US20080118004A1 (en)2004-07-302008-05-22Antonio ForenzaSystem and method for distributed input-distributed output wireless communications
US20080125051A1 (en)2006-06-302008-05-29Samsung Electronics Co., Ltd.Apparatus and method for transmitting/receiving data in a closed-loop multi-antenna system
US20080130790A1 (en)2004-07-302008-06-05Antionio ForenzaSystem and method for distributed input distributed output wireless communications
US20080132281A1 (en)2006-08-212008-06-05Byoung-Hoon KimApproach to a unified su-mimo/mu-mimo operation
US7394858B2 (en)2003-08-082008-07-01Intel CorporationSystems and methods for adaptive bit loading in a multiple antenna orthogonal frequency division multiplexed communication system
US20080165866A1 (en)2007-01-082008-07-10Koon Hoo TeoCooperative Communication and Shared Handoff among Base, Relay, and Mobile Stations in OFDMA Cellular Networks
US7406315B2 (en)2001-03-202008-07-29Arraycomm LlcMethod and apparatus for resource management in a wireless data communication system
US20080181285A1 (en)2007-01-292008-07-31Samsung Electronics Co., Ltd.Precoder and precoding method in a multi-antenna system
CN101238648A (en)2005-06-142008-08-06高通股份有限公司Transmitting spatial diversity for cellular single frequency networks
US7412212B2 (en)2002-10-072008-08-12Nokia CorporationCommunication system
US20080192697A1 (en)2007-02-122008-08-14Interdigital Technology CorporationMethod and apparatus for supporting handover from lte/eutran to gprs/geran
US20080192683A1 (en)2004-06-232008-08-14Jin-Kyu HanApparatus and Method for Transmitting and Receiving Packet Data Using Multiple Antennas in a Wireless Communication System
US20080200211A1 (en)2007-02-212008-08-21Hwang Seong-TaekSystem and method for forming cell by using distributed antennas in wimax mobile communication system
US20080205538A1 (en)2007-02-222008-08-28Shuangfeng HanMethod for ser approximation for ostbc in distributed wire communication systems
US20080214185A1 (en)2004-04-142008-09-04Samsung Electronics Co., Ltd.System and method for reselecting antennas in a cellular mobile communication system using multiple antennas
KR20080081698A (en)2007-03-062008-09-10삼성전자주식회사 Multi-user scheduling method and apparatus in communication system
US20080227422A1 (en)*2007-03-142008-09-18Samsung Electronics Co. Ltd.Apparatus and method for interference cancellation in multi-antenna system
US20080233902A1 (en)2007-03-212008-09-25Interdigital Technology CorporationMethod and apparatus for communicating precoding or beamforming information to users in mimo wireless communication systems
US20080232394A1 (en)2003-09-302008-09-25Werner KozekMethod For Regulating the Transmission Parameters of Broadband Transmission Channels Assembled to Form a Group
US7430197B1 (en)2000-09-292008-09-30Arraycomm, LlcRadio communications system with a shared broadcast channel
US20080239938A1 (en)2006-03-302008-10-02Beceem Communications Inc.Method and system for uplink coordinated reception in orthogonal frequency division multiple access systems
WO2008119216A1 (en)2007-04-032008-10-09Zte CorporationA common frequency interference suppression method in a wireless communication system
US7437177B2 (en)1996-06-272008-10-14Interdigital Communications Corp.Method employed by a base station for controlling initial power ramp-up using short codes
CN101291503A (en)2007-04-172008-10-22展讯通信(上海)有限公司Calibrating method and apparatus for radio frequency circuit of time division duplexing MIMO multi-antenna communicating system
US20080261587A1 (en)2005-11-162008-10-23Telefonaktiebolaget L M Ericsson (Publ)Expert System
US20080260054A1 (en)2006-08-172008-10-23Interdigital Technology CorporationMethod and apparatus for reducing a peak-to-average power ratio in a multiple-input multiple-output system
US20080267142A1 (en)2004-06-182008-10-30Stellaris Ltd.Distributed Antenna Wlan Access-Point System and Method
US20080268833A1 (en)2007-03-302008-10-30Leping HuangSystem and Method for Self-Optimization of Interference Coordination in Communication Systems
US7450489B2 (en)2003-12-302008-11-11Intel CorporationMultiple-antenna communication systems and methods for communicating in wireless local area networks that include single-antenna communication devices
US7451839B2 (en)2005-05-242008-11-18Rearden, LlcSystem and method for powering a vehicle using radio frequency generators
CN101310454A (en)2005-09-232008-11-19高通股份有限公司Method and apparatus for pilot communication in a multi-antenna wireless communication system
US20080292011A1 (en)2006-09-052008-11-27Huawei Technologies Co., Ltd.Method and system for implementing transmitting diversity and receiving diversity
US20080317014A1 (en)2007-06-212008-12-25Elektrobit Wireless Communications Ltd.Method for optimizing spatial modulation in a wireless link and network element thereto
US7471736B2 (en)2003-09-302008-12-30Alcatel-Lucent Usa Inc.Frequency based modulator compensation
US20090010204A1 (en)2007-04-132009-01-08Hart Communication FoundationSupport for Network Management and Device Communications in a Wireless Network
US20090023467A1 (en)2007-07-182009-01-22Kaibin HuangMethod and apparatus for performing space division multiple access in a wireless communication network
US20090034636A1 (en)2007-08-032009-02-05Kotecha Jayesh HFeedback scheduling to reduce feedback rates in MIMO systems
US20090041148A1 (en)2007-08-102009-02-12Guangjie LiOpen loop mu-mimo
US20090041151A1 (en)2007-08-072009-02-12Farooq KhanPilot boosting and traffic to pilot ratio estimation in a wireless communication system
US7492743B2 (en)2002-09-302009-02-17Intel CorporationAssigning training sequences based on spatial channels in a wireless communications system
US20090046800A1 (en)2007-08-132009-02-19Qualcomm IncorporatedFeedback and rate adaptation for mimo transmission in a time division duplexed (tdd) communication system
US20090046678A1 (en)2007-08-172009-02-19Industry-Academic Cooperation Foundation Of Kyung Hee UniversityMethod for predicting the mobility in mobile ad hoc networks
US7499548B2 (en)2003-06-242009-03-03Intel CorporationTerminal authentication in a wireless network
US20090060013A1 (en)2007-08-312009-03-05Ashikhmin Alexei EOptimizing precoder settings using average sinr reports for groups of tones
US20090069054A1 (en)2007-09-062009-03-12Zangi Kambiz CMethod and Apparatus for Linearly Precoding Downlink Transmissions to Reduce Temporal Variations in Interference
US20090067402A1 (en)2007-08-202009-03-12Antonio ForenzaSystem and Method For Distributed Input-Distributed Output Wireless Communications
US20090075686A1 (en)2007-09-192009-03-19Gomadam Krishna SMethod and apparatus for wideband transmission based on multi-user mimo and two-way training
US20090086855A1 (en)2007-09-282009-04-02Cisco Technology, Inc.Link adaptation based on generic cinr measurement according to log-likelihood ratio distribution
US20090086648A1 (en)2007-10-022009-04-02Nortel Networks LimitedRank Adaptation for an Open Loop Multi-Antenna Mode of Wireless Communication
CN101405965A (en)2006-03-202009-04-08英特尔公司Downlink resource allocation and mapping
US7519011B2 (en)2000-09-292009-04-14Intel CorporationFrame structure for radio communications system
US20090097448A1 (en)2007-10-122009-04-16Lucent Technologies Inc.Methods for idle registration and idle handoff in a femto environment
CN101442388A (en)2008-12-292009-05-27北京邮电大学Precoding method and apparatus for multi-input multi-output system
US20090135944A1 (en)2006-10-232009-05-28Dyer Justin SCooperative-MIMO Communications
US7548752B2 (en)2004-12-222009-06-16Qualcomm IncorporatedFeedback to support restrictive reuse
US20090168914A1 (en)2007-12-312009-07-02Motorola, Inc.Method and System for Utilizing Transmit Local Oscillator for Improved Cell Search and Multi-Link Communication in Multi-Mode Device
US7558575B2 (en)2003-07-242009-07-07Motorola Inc.Method and apparatus for wireless communication in a high velocity environment
US20090186611A1 (en)2007-12-182009-07-23Voyant International CorporationAircraft broadband wireless system and methods
US20090195355A1 (en)2008-02-012009-08-06Cynthia Sue MitchellMethods and apparatus for place shifting content to a vehicle entertainment system
US20090202016A1 (en)2008-02-082009-08-13Qualcomm IncorporatedOpen-loop transmit diversity schemes with four transmit antennas
US20090207822A1 (en)2007-12-312009-08-20Lg Electronics Inc.Method for transmitting and receiving signals using collaborative MIMO scheme
US20090209206A1 (en)2008-02-152009-08-20The Hong Kong University Of Science And TechnologyOptimal mimo isi channel estimation using loosely synchronized codes and their variations
US20090227249A1 (en)2008-03-102009-09-10Elektrobit Wireless Communications OyAdaptive transmission method and a base station using the method
US20090227292A1 (en)2008-03-082009-09-10Qualcomm IncorporatedMethods and apparatus for using polarized antennas in wireless networks including single sector base stations
US20090232245A1 (en)2008-03-172009-09-17Qualcomm IncorporatedMulti-resolution beamforming based on codebooks in mimo systems
JP2009213052A (en)2008-03-062009-09-17Sumitomo Electric Ind LtdWireless communication apparatus
US7599443B2 (en)2004-09-132009-10-06Nokia CorporationMethod and apparatus to balance maximum information rate with quality of service in a MIMO system
US20090254790A1 (en)2008-04-072009-10-08Samsung Electronics Co., Ltd.Methods and apparatus to improve communication in a relay channel
US20090262695A1 (en)2008-04-222009-10-22Texas Instruments IncorporatedRank and pmi in download control signaling for uplink single-user mimo (ul su-mimo)
US7609751B1 (en)2005-05-242009-10-27L-3 Communications CorporationMethod and apparatus to initiate communications between an unknown node and an existing secure network
US20090268675A1 (en)2008-04-282009-10-29Hyung-Nam ChoiApparatus and methods for transmission and reception of data in multi-antenna systems
US7616698B2 (en)2003-11-042009-11-10Atheros Communications, Inc.Multiple-input multiple output system and method
US20090285156A1 (en)2006-10-262009-11-19Huawei Technologies Co., Ltd.Method, apparatus and system for scheduling sdma codebooks
JP2009273167A (en)2005-03-312009-11-19Ntt Docomo IncTransmitter, receiver, mobile telecommunication system and transmission control method
US20090290517A1 (en)2008-05-212009-11-26Rao Sudarshan ACalibrating radiofrequency paths of a phased-array antenna
US20090290632A1 (en)2008-05-212009-11-26Samplify Systems, Inc.Compression of signals in base transceiver systems
US20090296650A1 (en)2008-06-032009-12-03Nec Laboratories America, Inc.Coordinated linear beamforming in downlink multi-cell wireless networks
US7630337B2 (en)2005-09-212009-12-08Broadcom CorporationMethod and system for an improved user group selection scheme with finite-rate channel state information feedback for FDD multiuser MIMO downlink transmission
US7633944B1 (en)2006-05-122009-12-15Juniper Networks, Inc.Managing timeouts for dynamic flow capture and monitoring of packet flows
WO2009151989A2 (en)2008-06-122009-12-17Intel CorporationTechniques for spatial reuse in wireless personal area networks based on virtual time divisional multiple access
US20090316807A1 (en)2006-01-132009-12-24Sang Gook KimMethod and apparatus for achieving transmit diversity and spatial multiplexing using antenna selection based on feedback information
US20090318183A1 (en)2008-06-232009-12-24Nokia CorporationMethod, apparatus and computer program for downlink mu-mimo power settings and control
KR20090132625A (en)2007-03-232009-12-30콸콤 인코포레이티드 Backhaul Communication for Interference Management
US20100008331A1 (en)2008-07-092010-01-14Qinghua LiBandwidth allocation base station and method for allocating uplink bandwidth using sdma
JP2010016674A (en)2008-07-042010-01-21Fujitsu LtdRadio communication apparatus, system and method
WO2010017482A1 (en)2008-08-072010-02-11Qualcomm IncorporatedMethod and apparatus for supporting multi-user and single-user mimo in a wireless communication system
US20100034151A1 (en)2008-08-072010-02-11Angeliki AlexiouMethod of joint resource allocation and clustering of base stations
WO2010019524A2 (en)2008-08-112010-02-18Qualcomm IncorporatedAnchor carrier in a multiple carrier wireless communication system
US20100068999A1 (en)2006-11-272010-03-18Joakim BangsNear field rf communicators and near field rf communications-enabled devices
US7684753B2 (en)2004-07-212010-03-23Nokia CorporationMethod and device for transmission parameter selection in mobile communications
CN101682432A (en)2007-05-292010-03-24三菱电机株式会社Calibration method, communication system, frequency control method, and communication apparatus
JP2010068496A (en)2008-09-122010-03-25Fujitsu LtdCommunication characteristic control method, pilot control method, base station device and mobile station device
US7689639B2 (en)2004-06-042010-03-30Telefonaktiebolaget Lm Ericsson (Publ)Complex logarithmic ALU
US20100080323A1 (en)2008-09-302010-04-01Markus MueckMethods and apparatus for partial interference reduction within wireless networks
US20100080163A1 (en)2008-09-302010-04-01Qualcomm IncorporatedApparatus and methods of providing and receiving venue level transmissions and services
JP2010074520A (en)2008-09-182010-04-02Nec CorpCommunication system, transmitting device, receiving device, and communication method
US20100099428A1 (en)2008-04-222010-04-22Qualcomm IncorporatedNull pilots for interference estimation in a wireless communication network
US20100098030A1 (en)2006-11-012010-04-22Yi-Pin Eric WangMethod and Arrangement for SINR Feedback in MIMO Based Wireless Communication Systems
US7719993B2 (en)2004-12-302010-05-18Intel CorporationDownlink transmit beamforming
US20100128630A1 (en)2006-07-132010-05-27Designart Networks LtdAccess point planning mechanism
US7729316B2 (en)2002-09-302010-06-01Intel CorporationReceiving signals on a channel used for traffic and access in a communications system
US7729433B2 (en)2006-03-072010-06-01Motorola, Inc.Method and apparatus for hybrid CDM OFDMA wireless transmission
WO2010067419A1 (en)2008-12-092010-06-17株式会社日立製作所Wireless communication system and wireless communication method
US20100157861A1 (en)2008-12-182010-06-24Cisco Technology, Inc.Beamforming spatial de-multiplexing for collaborative spatially multiplexed wireless communication
US20100164802A1 (en)2008-12-312010-07-01Intel CorporationArrangements for beam refinement in a wireless network
US7751368B2 (en)2006-05-012010-07-06Intel CorporationProviding CQI feedback to a transmitter station in a closed-loop MIMO system
US20100183099A1 (en)2007-04-242010-07-22Kyocera CorporationReception Control Method and Wireless Communication Apparatus
US20100189191A1 (en)2007-06-192010-07-29Ntt Docomo, Inc.Transmitter and transmission method
US20100195527A1 (en)2009-02-022010-08-05Qualcomm IncorporatedScheduling algorithms for cooperative beamforming based on resource quality indication
US20100203887A1 (en)2009-02-102010-08-12Kim HakscongMethod and apparatus for coordinated multiple point transmission and reception
TW201031243A (en)2009-01-132010-08-16Qualcomm IncEnvironment-specific measurement weighting in wireless positioning
US20100220671A1 (en)2008-11-212010-09-02Samuel GuillouardMethod for transmission of data and method for corresponding reception
US20100220679A1 (en)2009-02-272010-09-02Qualcomm IncorporatedMethods and apparatuses for scheduling uplink request spatial division multiple access (rsdma) messages in an sdma capable wireless lan
JP2010193189A (en)2009-02-182010-09-02Nippon Telegr & Teleph Corp <Ntt>Distributed antenna system and distributed antenna control method
US20100227562A1 (en)2009-03-042010-09-09Samsung Electronics Co., Ltd.Method and apparatus for eliminating multi-user interference in multi-antenna system
JP2010206794A (en)2009-03-022010-09-16Mitsubishi Electric Research Laboratories IncMethod for optimizing performance in multi-cell orthogonal frequency-division multiple access networks including set of base stations
US20100234071A1 (en)2009-03-122010-09-16Comsys Communication & Signal Processing Ltd.Vehicle integrated communications system
US20100232336A1 (en)2009-03-132010-09-16Sharp Laboratories Of America, Inc.Systems and methods for selecting antennas for coordinated multipoint transmission
US7801490B1 (en)2004-03-172010-09-21Hewlett-Packard CompanyInterference based scheduling using cognitive radios
US20100238824A1 (en)2009-03-202010-09-23Qualcomm IncorporatedFeedback mechanisms for beamforming operation
US20100238984A1 (en)2009-03-192010-09-23Motorola, Inc.Spatial Information Feedback in Wireless Communication Systems
US20100260115A1 (en)2007-01-122010-10-14Nokia CorporationMethod and apparatus for providing automatic control channel mapping
US20100260103A1 (en)2007-10-302010-10-14Jiann-Ching GueyDistributed Antenna System
US20100260060A1 (en)2009-04-082010-10-14Qualcomm IncorporatedIntegrated calibration protocol for wireless lans
US20100265842A1 (en)2009-04-212010-10-21Qualcomm IncorporatedEnabling support for transparent relays in wireless communication
CN101873281A (en)2010-07-152010-10-27西安电子科技大学 A Reciprocity Loss Compensation Method for 2×2 TDD-MIMO System Channel
EP2244390A2 (en)2009-04-232010-10-27NTT DoCoMo, Inc.Radio communication apparatus and method
US20100279625A1 (en)2009-05-042010-11-04Hyunsoo KoMethod fof transmitting control information in wireless communication system
EP2252109A1 (en)2009-05-152010-11-17ST-NXP Wireless FranceMethod and apparatus for performing inter radio access technology radio measurements
US20100290369A1 (en)2009-05-122010-11-18Airhop Communications, Inc.Dual mode radio for frequency division duplexing and time division duplexing communication modes
US20100290382A1 (en)2009-05-142010-11-18Dennis HuiDistributed computation of precoding weights for coordinated multipoint transmission on the downlink
US20100296591A1 (en)2006-10-312010-11-25Hao XuUnified design and centralized scheduling for dynamic simo, su-mimo and mu-mimo operation for rl transmissions
US7849173B1 (en)2001-12-312010-12-07Christopher UhlikSystem for on-demand access to local area networks
US20100316154A1 (en)2007-02-072010-12-16Sung Ho ParkMethod for performing virtual multiple antenna transmission in uplink using feedback information and mobile terminal supporting the same
US20100316163A1 (en)2004-04-022010-12-16Antonio ForenzaSystem and method for DIDO precoding interpolation in multicarrier systems
US20100315966A1 (en)2002-04-152010-12-16Aol Inc.Dynamically managing and reconfiguring wireless mesh networks
US20100323611A1 (en)2009-06-192010-12-23Sharp Laboratories Of America, Inc.Systems and methods for coherent precoding with antenna selection for coordinated multipoint transmission
US20100322176A1 (en)2009-06-192010-12-23Runhua ChenMultiple CQI Feedback for Cellular Networks
US7864663B2 (en)2007-05-252011-01-04Telefonaktiebolaget Lm Ericsson (Publ)Orthogonal spread-spectrum waveform generation with non-contiguous spectral occupancy for use in CDMA communications
US20110003606A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for managing inter-cluster handoff of clients which traverse multiple DIDO clusters
US20110003608A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for managing handoff of a client between different distributed-input-distributed-output (DIDO) networks based on detected velocity of the client
US20110002410A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for power control and antenna grouping in a distributed-input-distributed-output (DIDO) network
US20110003607A1 (en)2004-04-022011-01-06Antonio ForenzaInterference management, handoff, power control and link adaptation in distributed-input distributed-output (DIDO) communication systems
US20110002371A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for adjusting DIDO interference cancellation based on signal strength measurements
US20110002411A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for link adaptation in DIDO multicarrier systems
US20110007856A1 (en)2008-03-072011-01-13Nortel Networks LimitedMethod and system for reduced system-time overhead parameter length representation for inter-radio access technology communication
US20110019715A1 (en)2009-07-242011-01-27At&T Mobility Ii LlcAsymmetrical receivers for wireless communication
US20110017700A1 (en)2003-05-232011-01-27Patcheak Terry DHot-fill container
JP2011035912A (en)2009-08-052011-02-17Ntt Docomo IncMethod and base station for obtaining channel quality indicator information
WO2011018121A1 (en)2009-08-142011-02-17Nokia Siemens Networks OyImprovements for coordinated multipoint transmission
US20110038436A1 (en)2008-05-072011-02-17Jae Wan KimMethod for transmitting and receiving data in a cooperative multiple-input multiple-output mobile communication system
CN101981826A (en)2008-03-282011-02-23爱立信电话股份有限公司 Method and apparatus for antenna selection in a MIMO system
US20110044193A1 (en)2004-04-022011-02-24Antonio ForenzaSystems and methods to coordinate transmissions in distributed wireless systems via user clustering
US20110051832A1 (en)2009-08-262011-03-03Qualcomm IncorporatedMethods for determining reconstruction weights in a mimo system with successive interference cancellation
US20110069638A1 (en)2009-09-242011-03-24Kentaro IshizuCognitive communication network system and communicating method thereof
US20110077038A1 (en)2009-09-302011-03-31Qualcomm IncorporatedScrambling sequence initialization for coordinated multi-point transmissions
US20110076954A1 (en)2005-05-232011-03-31Cisco Technology, Inc.Method and system for interference reduction
TW201112665A (en)2009-08-122011-04-01Qualcomm IncMethod and apparatus for supporting single-user multiple-input multiple-output (SU-MIMO) and multi-user MIMO (MU-MIMO)
US20110085610A1 (en)2009-10-122011-04-14Motorola, Inc.Configurable Spatial Channel Information Feedback in Wireless Communication System
US20110086611A1 (en)2009-10-092011-04-14At&T Mobility Ii LlcMobile device leasing with customized operational features
JP2011078025A (en)2009-10-012011-04-14Ntt Docomo IncCoordinated transmission method, coordinated transmission system, central station and radio base station
US20110090005A1 (en)2007-08-312011-04-21Oki Semiconductor Co., Ltd.Semiconductor device, semiconductor element, and substrate
US20110090885A1 (en)2009-10-152011-04-21Saeid SafaviMethods and apparatus for centralized and coordinated interference mitigation in a wlan network
US20110090840A1 (en)2008-07-212011-04-21Electronics And Telecommunications Research InstituteCommunication system for removing transmission overhead
US20110096736A1 (en)2009-10-282011-04-28Samsung Electronics Co., Ltd.Communication system having network access structure
US20110105174A1 (en)2009-10-022011-05-05Interdigital Patent Holdings, Inc.Method and apparatus for transmit power control for multiple antenna transmissions in the uplink
US20110111781A1 (en)2009-11-092011-05-12Qualcomm IncorporatedReference signaling for a high-mobility wireless communication device
JP2011097225A (en)2009-10-282011-05-12Kyocera CorpRadio base station, and radio communication method
US7948444B2 (en)2003-12-222011-05-24Telefonaktiebolaget Lm Ericsson (Publ)Method and system of communications for high data rate transmission
US20110135308A1 (en)2009-12-092011-06-09Luigi TarlazziDistributed antenna system for mimo signals
US20110142104A1 (en)2008-07-162011-06-16Telefonaktiebolaget L M Ericsson (Publ)Base and Repeater Stations
US20110142020A1 (en)2009-12-102011-06-16Lg Electronics Inc.Method and apparatus of transmitting training signal in wireless local area network system
US20110149765A1 (en)2009-06-292011-06-23Qualcomm IncorporatedOpen loop channel reporting in a wireless communication system
US20110164597A1 (en)2009-08-172011-07-07Broadcom CorporationMulti-user uplink communications within multiple user, multiple access, and/or MIMO wireless communication systems
US20110164697A1 (en)2008-09-122011-07-07Telefonaktiebolaget Lm Ericsson (Publ)Methods and devices for spatial coding
US7978673B1 (en)2000-12-292011-07-12Intel CorporationChannel allocation based on random plus planned processes
US7995973B2 (en)2008-12-192011-08-09Telefonaktiebolaget Lm Ericsson (Publ)Own transmitter interference tolerant transceiver and receiving methods
US20110195670A1 (en)2010-02-082011-08-11Sriraman DakshinamurthyMethod and system for uplink beamforming calibration in a multi-antenna wireless communication system
CN102158272A (en)2010-02-122011-08-17华为技术有限公司Method, device and system for calibrating radio-frequency channels
US20110199946A1 (en)2010-02-172011-08-18Qualcomm IncorporatedMethod and apparatus for supporting adaptive channel state information feedback rate in multi-user communication systems
WO2011100492A1 (en)2010-02-122011-08-18Interdigital Technology CorporationData split between multiple sites
WO2011099802A2 (en)2010-02-112011-08-18Lg Electronics Inc.Method and apparatus of recovering backhaul link failure between base station and relay node
US20110205963A1 (en)2010-02-242011-08-25Futurewei Technologies, Inc.System and Method for Reduced Feedback in Multiuser Multiple Input, Multiple Output Wireless Communications
US20110211485A1 (en)2007-06-142011-09-01Kai XuMethod and system for operating a multi-user multiple-input multiple output (mu-mimo) wireless communications system
JP2011176493A (en)2010-02-232011-09-08Ntt Docomo IncSystem for feedback of transmission route information
US20110216662A1 (en)2010-01-212011-09-08Chun NieCoopmax: a cooperative mac with randomized distributed space time coding for an ieee 802.16 network
CN102186541A (en)2008-02-012011-09-14耐克国际有限公司Systems and methods for fitting golfers with golf clubs
WO2011116824A1 (en)2010-03-252011-09-29Telefonaktiebolaget L M Ericsson (Publ)Method for backhaul link protection in a mimo wireless link
US20110261769A1 (en)2010-04-262011-10-27Samsung Electronics Co. Ltd.Method and apparatus for controlling inter-cell interference of control channels in ofdm-based hierarchical cellular system
US20110274053A1 (en)2010-05-062011-11-10Qualcomm IncorporatedSystem and method for controlling downlink packet latency
US20110294527A1 (en)2010-05-262011-12-01Qualcomm IncorporateApparatus for Clustering Cells Using Neighbor Relations
US20110305195A1 (en)2008-10-272011-12-15Andreas ForckMethod for Network Co-ordination in a Mobile Communications System and Apparatus Thereof
WO2011155763A2 (en)2010-06-082011-12-15엘지전자 주식회사Method and device for transmitting/receiving channel state information in coordinated multipoint communication system
US20110306381A1 (en)2010-06-152011-12-15Futurewei Technologies, Inc.System and Method for Transparent Coordinated Beam-Forming
US8081944B2 (en)2003-04-072011-12-20Bellow Bellows LlcWireless transmitter receiver
US20110310994A1 (en)2009-02-132011-12-22Lg Electronics Inc.Data transmission method and apparatus in multiple antenna system
US20110310987A1 (en)2010-06-162011-12-22Samsung Electronics Co., Ltd.Uplink power control method for mobile communication system
US8086271B2 (en)2001-09-122011-12-27Ericsson Inc.Network architecture for mobile communication network with billing module for shared resources
US8090320B2 (en)2008-12-192012-01-03Telefonaktiebolaget Lm Ericsson (Publ)Strong signal tolerant OFDM receiver and receiving methods
KR20120001598A (en)2010-06-282012-01-04엘지전자 주식회사 Method and apparatus for transmitting synchronization signal in multi-node system
WO2012000278A1 (en)2010-06-282012-01-05中兴通讯股份有限公司A method and device for realizing frequency spectrum coordination between tdd system and fdd system
US20120002743A1 (en)*2010-06-302012-01-05Charles Casimiro CavalcanteStatistical Joint Precoding in Multi-Cell, Multi-User MIMO
KR20120003781A (en)2010-07-052012-01-11주식회사 팬택 Transmission apparatus and its communication method, receiving apparatus and its communication method
US20120014477A1 (en)2009-03-232012-01-19Hyun Soo KoMethod and apparatus for transmitting reference signal in multi-antenna system
US20120014415A1 (en)2009-02-192012-01-19Atheros Communications, Inc.Transmitter beamforming steering matrix processing and storage
WO2012007837A1 (en)2010-07-162012-01-19Alcatel LucentMethod and device for selecting user terminal so as to enhance reciprocity error calibration between uplink and downlink
US20120021707A1 (en)2010-07-262012-01-26Qualcomm IncorporatedApparatus and method for adjustment of transmitter power in a system
US8116710B2 (en)2009-06-042012-02-14Telefonaktiebolaget L M Ericsson (Publ)Continuous sequential scatterer estimation
US20120039419A1 (en)2008-09-252012-02-16Mohammad Ali Maddah-AliX-mimo systems with multi-transmitters and multi-receivers
US20120039320A1 (en)2010-09-142012-02-16Dali Systems Co., Ltd.Remotely Reconfigurable Distributed Antenna System and Methods
US20120044111A1 (en)2009-12-282012-02-23Masahiko NagoshiAntenna apparatus resonating in plural frequency bands in inverted f antenna
US20120046039A1 (en)2009-05-202012-02-23Telefonaktiebolaget L M Ericsson (Publ)Methods and arrangements in a wireless communication system
WO2012024454A1 (en)2010-08-172012-02-23Qualcomm IncorporatedApparatus and method for controlling inter-cell interference between femtocells and macrocells
US8126510B1 (en)2006-11-152012-02-28Nextel Communications Inc.Public safety communications network architecture
US20120051257A1 (en)2009-06-182012-03-01Hyung Tae KimMethod and apparatus for feeding back channel state information
US20120054172A1 (en)2010-08-312012-03-01International Business Machines CorporationMethod and system for transmitting a query in a wireless network
KR20120024836A (en)2009-05-222012-03-14콸콤 인코포레이티드Methods, apparatuses and computer program products for distributed scheduling to facilitate interference management
TW201212570A (en)2010-01-202012-03-16Broadcom CorpA method and system for orthogonalized beamforming in multiple user multiple input multiple output (MU-MIMO) communication systems
US20120076023A1 (en)2010-09-262012-03-29Lg Electronics Inc.Method and apparats for performing efficient feedback in wireless communication system supporting multiple antenna
US20120076042A1 (en)2009-06-072012-03-29Sung Duck ChunMethod and apparatus for random access in a multi-carrier wireless communication system
US20120076028A1 (en)2010-09-292012-03-29Hyunsoo KoMethod and apparatus for performing effective feedback in wireless communication system supporting multiple antennas
WO2012044969A1 (en)2010-10-012012-04-05Andrew LlcDistributed antenna system for mimo signals
US20120082038A1 (en)2010-10-012012-04-05Clear Wireless, LlcEnabling coexistence between fdd and tdd wireless networks
US20120087261A1 (en)2010-10-062012-04-12Qualcomm IncorporatedDynamic switching between common reference signal interference cancelation and resource element puncturing in a co-channel heterogeneous network
US20120087430A1 (en)2004-04-022012-04-12Antonio ForenzaSystems and methods to exploit areas of coherence in wireless systems
US20120093078A1 (en)2004-04-022012-04-19Perlman Stephen GSystem and methods for planned evolution and obsolescence of multiuser spectrum
WO2012058600A2 (en)2010-10-292012-05-03Lilee Systems, LtdSystem and method of frequency offset compensation for radio system with fast doppler shift
US20120106388A1 (en)2009-06-182012-05-03Sharp Kabushiki KaishaCommunication system, communication apparatus and communication method
US20120108928A1 (en)2010-11-012012-05-03Oxirate, Inc.System and Method for Measurement of Vital Signs of a Human
US20120114021A1 (en)2009-07-132012-05-10Lg Electronics Inc.Method and apparatus for configuring a transmission mode for a backhaul link transmission
US20120127977A1 (en)2008-04-042012-05-24Gregory Clark CopelandSynchronization of time in a mobile ad-hoc network
JP2012120063A (en)2010-12-032012-06-21Hitachi LtdRadio base station device to control antenna transmission power
US20120163427A1 (en)2010-12-232012-06-28Electronics And Telecommunications Research InstituteSystem and method for synchronous transmission of content
JP2012124859A (en)2010-12-102012-06-28Sharp CorpCommunication system, base station device, communication method and communication program
CN102594420A (en)2011-01-102012-07-18上海贝尔股份有限公司Interference suppression method and interference suppression device in multipoint coordinated transmission system
US20120188988A1 (en)2009-10-122012-07-26Lg Electronics Inc.Method and apparatus for providing downlink reference signal transmission power information in a wireless communication system that supports multiple antennas
KR20120084243A (en)2011-01-192012-07-27엘지전자 주식회사Method and apparatus for receiving signal in multi-node system
WO2012108976A1 (en)2011-02-112012-08-16Qualcomm IncorporatedCooperation of a macro node and remote radio heads in heterogeneous networks
WO2012108807A1 (en)2011-02-092012-08-16Telefonaktiebolaget L M Ericsson (Publ)Point-dependent resource symbol configuration in a wireless cell
US20120218968A1 (en)2009-11-052012-08-30Lg Electronics Inc.Method for transmitting channel quality information, and apparatus for same
US8260198B2 (en)2006-04-272012-09-04Sony CorporationWireless communication system, wireless communication apparatus, and wireless communication method
US20120224528A1 (en)2011-03-042012-09-06Pablo TapiaPacket-switched core network architecture for voice services on second- and third- generation wireless access networks
JP2012175189A (en)2011-02-172012-09-10Sharp CorpRadio transmitter, radio receiver, radio communications system, control program, and integrated circuit
US20120230691A1 (en)2011-03-112012-09-13Dennis HuiMethod of downlink signal transport over backhaul communications through distributed processing
US20120236840A1 (en)2009-11-242012-09-20Electronics And Telecommunications Research InstituteMethod for protecting data in a mu-mimo based wireless communication system
US20120236741A1 (en)2011-02-142012-09-20Qualcomm IncorporatedPower control and user multiplexing for heterogeneous network coordinated multipoint operations
WO2012130071A1 (en)2011-03-252012-10-04北京新岸线无线技术有限公司Resource scheduling method and device
US20120252470A1 (en)2011-03-312012-10-04Wendy WongDistributed adaptive resource allocation to enhance cell edge throughput
US20120258657A1 (en)2007-06-262012-10-11Lgc Wireless, LlcDistributed antenna communications system
KR20120119175A (en)2011-04-202012-10-30주식회사 팬택Method and apparatus for transmitting/receiving channel state information in wireless communication system
US20120275530A1 (en)2011-04-292012-11-01Interdigital Patent Holdings, Inc.Open loop spatial processing
US20120281622A1 (en)2007-12-172012-11-08Ofer SabanMultiple data services over a distributed antenna system
US20120281555A1 (en)2011-05-022012-11-08Research In Motion LimitedSystems and Methods of Wireless Communication with Remote Radio Heads
US20120288022A1 (en)2011-05-092012-11-15Jiann-Ching GueyChannel estimation for a very large-scale multiple-input multiple-output (mimo) system
US20120289284A1 (en)2008-10-292012-11-15Telefonaktiebolaget L M Ericsson (Publ)Cell Type Information Sharing Between Neighbor Base Stations
US8320432B1 (en)2009-04-272012-11-27Indian Institute of Science at BangaloreDevice and method for precoding vectors in a communication system
US20120300717A1 (en)2011-05-242012-11-29Kabushiki Kaisha ToshibaMethod and apparatus for antenna selection in wireless communications systems
US20120314570A1 (en)2004-04-022012-12-13Antonio ForenzaSystem and methods to compensate for doppler effects in distributed-input distributed-output wireless systems
US20120314797A1 (en)2011-06-092012-12-13Andrew LlcDistributed Antenna System Interface for Processing Digital Signals in a Standardized Format
US20120314649A1 (en)2007-08-202012-12-13Antonio ForenzaSystems and methods to enhance spatial diversity in distributed-input distributed output-wireless systems
US20120328301A1 (en)2008-03-122012-12-27Hypres, Inc.Digital radio frequency transceiver system and method
CA2838781A1 (en)2011-06-292013-01-03Adc Telecommunications, Inc.Evolved distributed antenna system
US20130033998A1 (en)2010-03-292013-02-07Inkwon SeoMethod and apparatus for measurement for inter-cell interference coordination in radio communication system
US20130039168A1 (en)2007-08-202013-02-14Antonio ForenzaSystems and methods for wireless backhaul in distributed-input distributed-output wireless systems
US20130039387A1 (en)2011-08-102013-02-14Futurewei Technologies, Inc.System and Method for Signaling and Transmitting Uplink Reference Signals
US20130039349A1 (en)2011-08-122013-02-14Research In Motion LimitedMethods of Channel State Information Feedback and Transmission in Coordinated Multi-Point Wireless Communications System
US20130038766A1 (en)2005-07-202013-02-14Stephen G. PerlmanApparatus and method for capturing still images and video using coded lens imaging techniques
US20130039332A1 (en)2011-08-122013-02-14Interdigital Patent Holdings, Inc.Method and apparatus for multiple-input multiple-output operation
US20130044797A1 (en)2011-08-192013-02-21Telefonaktiebolaget Lm Ericsson (Publ)Methods of receiving multiple input multiple output signals and related communication devices
CN102948085A (en)2010-06-182013-02-27日本电气株式会社Precoding techniques for downlink coordinated multipoint transmission in radio communications system
US20130051240A1 (en)2011-02-142013-02-28Qualcomm IncorporatedCRS (COMMON REFERENCE SIGNAL) AND CSI-RS (CHANNEL STATE INFORMATION REFERENCE SIGNAL) TRANSMISSION FOR REMOTE RADIO HEADS (RRHs)
US20130064216A1 (en)2011-09-122013-03-14Research In Motion LimitedDMRS Association and Signaling for Enhanced PDCCH in LTE Systems
WO2013040089A2 (en)2011-09-142013-03-21Rearden, LlcSystems and methods to exploit areas of coherence in wireless systems
US20130077569A1 (en)2011-09-222013-03-28Samsung Electronics Co. Ltd.Apparatus and method for uplink transmission in wireless communication systems
US20130077514A1 (en)2011-09-232013-03-28Esmael Hejazi DinanChannel State Information Transmission
US20130083681A1 (en)2011-09-302013-04-04Research In Motion LimitedMethods of Channel State Information Feedback and Transmission in Coordinated Multi-Point Wireless Communications System
US20130089009A1 (en)2011-09-192013-04-11Li Erran LiMethod and apparatus for interference cancellation for antenna arrays
US20130094548A1 (en)2010-06-212013-04-18Pantech Co., Ltd.Method for transmitting channel information, device thereof, base station, and method for transmitting for base station thereof
US8428177B2 (en)2009-02-252013-04-23Samsung Electronics Co., Ltd.Method and apparatus for multiple input multiple output (MIMO) transmit beamforming
CN103069903A (en)2010-08-132013-04-24高通股份有限公司Backward compatible lte system design for asymmetric uplink/downlink spectrum
US20130114437A1 (en)2011-11-042013-05-09Qualcomm IncorporatedMethod and apparatus for interference cancellation by a user equipment using blind detection
CN103117975A (en)2007-08-202013-05-22瑞登有限责任公司System of compensating MU-MAS communications and dynamically adapting communication characteristics of MU-MAS communication system
JP2013102450A (en)2007-11-022013-05-23Alcatel-Lucent Usa IncInterpolation method and apparatus for increasing efficiency of crosstalk estimation
US20130128821A1 (en)2011-11-182013-05-23Nokia Siemens Networks OyDemodulation Reference Signal Arrangement For Uplink Coordinated Multi-Point Reception
US8451764B2 (en)2007-03-212013-05-28Alcatel LucentMethod and apparatus for supporting MBMS in system architecture evolution
US20130142290A1 (en)2011-12-022013-06-06Futurewei Technologies, Inc.Method and Apparatus for Modulation and Coding Scheme Adaption in a MIMO System
CN103152807A (en)2013-03-192013-06-12东南大学Method for distributing power between multiple base stations and multiple antennae of TDD (Time Division Duplex) cooperative wireless network
US8482462B2 (en)2007-05-252013-07-09Rambus Inc.Multi-antenna beam-forming system for transmitting constant envelope signals decomposed from a variable envelope signal
CN103201958A (en)2011-02-072013-07-10大理系统有限公司 Daisy-chained ring of remote units for distributed antenna systems
US20130188567A1 (en)*2010-09-082013-07-25James June-Ming WangPSMP-Based Downlink Multi-User MIMO Communications
US20130195086A1 (en)2012-02-012013-08-01Qualcomm IncorporatedTiming management in uplink (ul) coordinated multipoint (comp) transmission
US20130195047A1 (en)2012-01-302013-08-01Renesas Mobile CorporationMethod and apparatus implementing channel quality control
US20130208671A1 (en)2012-02-032013-08-15Telefonaktiebolaget L M Ericsson (Publ)Apparatus, systems, methods, and computer products suitable for use in an advanced digital baseband processor
US20130208604A1 (en)2011-08-122013-08-15Interdigital Patent Holdings, Inc.Interference Measurement In Wireless Networks
US20130242890A1 (en)2012-03-162013-09-19Hong HePHYSICAL UPLINK CONTROL CHANNEL (PUCCH) RESOURCE MAPPING USING AN ENHANCED PHYSICAL DOWNLINK CONTROL CHANNEL (ePDCCH)
US20130242956A1 (en)2005-11-012013-09-19At&T Intellectual Property Ii, L.P.Non-interference technique for spatially aware mobile ad hoc networking
US8548384B2 (en)2009-03-252013-10-01Samsung Electronics Co., Ltd.Adaptive interference alignment precoding and decoding to prevent multi-cell interference
US20130272250A1 (en)2010-12-272013-10-17Sharp Kabushiki KaishaBase-station apparatus, terminal apparatus, communication system, and communication method
US20130272441A1 (en)2011-01-122013-10-17Adc Telecommunications, Inc.Distinct transport path for mimo transmissions in distributed antenna systems
US20130272170A1 (en)2012-04-132013-10-17Debdeep CHATTERJEEAdaptive ul-dl tdd configurations in a heterogneous network
US20130286997A1 (en)*2011-02-072013-10-31Intel CorporationWireless communication sysytem with common cell id
US20130286866A1 (en)2012-03-052013-10-31Telefonaktiebolaget Lm Ericsson (Publ)Configuring Channel-State Information Resources used for Reference-Signal-Received-Power Feedback
US20130286958A1 (en)2012-02-012013-10-31Huawei Technologies Co., Ltd.Method, base station, and user equipment for accessing physical random access channel
WO2013166464A1 (en)2012-05-042013-11-07Rearden, LlcSystem and methods for coping with doppler effects in distributed-input distributed-output wireless systems
WO2013173809A1 (en)2012-05-182013-11-21Rearden, LlcSystems and methods to enhance spatial diversity in distributed input distributed output wireless systems
US20130315189A1 (en)2011-04-292013-11-28Lg Electronics Inc.Method and apparatus for transmitting channel status information in wireless communication system
US20130315211A1 (en)2012-05-252013-11-28University Of Southern CaliforniaAirsync: enabling distributed multiuser mimo with full multiplexing gain
US20130315195A1 (en)2011-02-112013-11-28Electronics & Telecommunications Research InstituteWireless communication system using multiple transmission and reception points
US20130322308A1 (en)2011-02-182013-12-05Zte CorporationMethod and system for providing service from TDD cell to terminal
US20130329592A1 (en)2011-02-032013-12-12Nvidia CorporationSystem and method for reducing interference
US20130331114A1 (en)2012-06-062013-12-12Eden Rock Communications, LlcAdjacent network aware self organizing network system
US8612619B2 (en)2006-03-312013-12-17Alcatel LucentMethod and apparatus for improved multicast streaming in wireless networks
US20140010197A1 (en)2011-03-102014-01-09Fujitsu LimitedInterference coordinating method, base station and user equipment
US20140016556A1 (en)2011-03-242014-01-16Sharp Kabushiki KaishaBase station, terminal, communication system, communication method, and integrated circuit
US8638880B2 (en)2010-01-182014-01-28Telefonaktiebolaget Lm Ericsson (Publ)Radio base station and user equipment and methods therein
US20140029490A1 (en)2011-05-022014-01-30Lg Electronics Inc.Method for transmitting/receiving data in wireless access system and base station for same
US20140038619A1 (en)2011-04-272014-02-06Fujitsu LimitedWireless communication with co-operating cells
US8654815B1 (en)2004-04-022014-02-18Rearden, LlcSystem and method for distributed antenna wireless communications
RU2012121952A (en)2010-01-152014-02-20ЗетТиИ Корпорейшн METHOD FOR TRANSMISSION OF INFORMATION ON PAIRING AUXILIARY CARRIER FREQUENCIES, UNIT IN AND TRANSMISSION IMPLEMENTATION SYSTEM
US20140056156A1 (en)2011-11-092014-02-27George JöngrenCSI Reporting for a Set of CSI-RS Resources
US20140087680A1 (en)2012-09-272014-03-27Nokia CorporationMethod and apparatus for enhancing emergency calling with mobile devices
US20140086296A1 (en)2012-09-262014-03-27Biljana BadicReceiver with Multi Layer Interference Cancellation
US20140086209A1 (en)2012-09-262014-03-27Apple Inc.Method for simultaneously receiving lte and 1x in srlte device
US20140094169A1 (en)2011-07-072014-04-03Sony CorporationCommunication device and communication method
WO2014055294A1 (en)2012-10-022014-04-10Rearden, LlcSystems and methods for wireless backhaul in distributed-input distributed-output wireless systems
US8705484B2 (en)2008-08-152014-04-22Ntt Docomo, Inc.Method for varying transmit power patterns in a multi-cell environment
US20140112216A1 (en)2011-06-292014-04-24Lg Electronics Inc.Method and apparatus for controlling inter-cell interference in wireless communication system
US20140113677A1 (en)2011-06-212014-04-24Telefonaktiebolaget L M Ericsson (Publ)User equipment and a method therein for transmission power control of uplink transmissions
US20140140225A1 (en)2012-11-202014-05-22Adc Telecommunications, Inc.Distributed antenna system with uplink bandwidth for signal analysis
US20140146756A1 (en)2010-11-102014-05-29Interdigital Patent Holdings, Inc.Method and apparatus for interference mitigation via successive cancellation in heterogeneous networks
WO2014082048A1 (en)2012-11-262014-05-30Rearden, LlcExploiting inter-cell multiplexing gain in wireless cellular systems
US20140153427A1 (en)2011-07-252014-06-05Lg Electronics Inc.Method and apparatus for monitoring a wireless link in a wireless communication system
US20140185700A1 (en)2011-09-062014-07-03Huawei Technologies Co., Ltd.Method and apparatus for linear precoding in multi-user multiple-input multiple-output system
US20140198744A1 (en)2011-05-172014-07-17Interdigital Patent Holdings, Inc.Method and apparatus for data-splitting transmission from multiple sites
US8787469B2 (en)2007-04-042014-07-22Samsung Electronics Co., Ltd.Method for codebook design and beamforming vector selection in per-user unitary rate control (PU2RC) system
US20140206280A1 (en)2011-08-042014-07-24Telefonaktiebolaget L M Ericsson (Publ)Enhanced Rank For Outdoor to Indoor Coverage
US8797970B2 (en)2004-12-072014-08-05Adaptix, Inc.Method and system for switching antenna and channel assignments in broadband wireless networks
US20140219202A1 (en)2011-08-192014-08-07Lg Electronics Inc.Method for transmitting uplink control information, user equipment, method for receiving uplink control information, and base station
US20140219142A1 (en)2013-02-042014-08-07Gary D. SchulzAgile duplexing wireless radio devices
US20140219267A1 (en)2013-02-072014-08-07Airvana LlcRadio access networks
US20140219152A1 (en)2011-08-152014-08-07Telefonaktiebolaget L M Ericsson (Publ)Method and an Apparatus in a User Equipment for Controlling Transmission Power of the User Equipment
US20140225788A1 (en)2013-02-082014-08-14Ubiquiti Networks, Inc.Radio system for long-range high speed wireless communication
US20140226570A1 (en)2013-02-112014-08-14Telefonaktiebolaget L M Ericsson (Publ)Virtual macro cells
US20140245095A1 (en)*2012-02-082014-08-28Telefonaktiebolaget L M Ericsson (Publ)Methods of communicating data including shared ack/nack messages and related devices
US20140241240A1 (en)2013-02-282014-08-28Cisco Technology, Inc.Distributed Processing Distributed-Input Distributed-Output (DIDO) Wireless Communication
US20140241209A1 (en)2007-08-162014-08-28Nokia Solutions And Networks OyIntegration apparatus, communication network and method for integrating a network node into a communication network
US20140241218A1 (en)2010-08-262014-08-28Golba LlcMethod and system for distributed communication
CN104025684A (en)2012-12-312014-09-03华为技术有限公司Information transmission method and device
US8849339B2 (en)2011-08-122014-09-30Telefonaktiebolaget L M Ericsson (Publ)Closed loop power control in a heterogeneous network by selecting among sets of accumulative power step values
US20140295758A1 (en)2010-12-142014-10-02Thomas PedersenDocking station for a handheld telecommunication device
US20140294108A1 (en)2011-09-232014-10-02Raul Hernan EtkinExtrapolating Channel State Information ("CSI") Estimates From Multiple Packets Sent Over Different Antennas to Generate a Combined CSI Estimate for a MIMO-OFDM System
US20140301493A1 (en)2013-04-042014-10-09Mbit Wireless, Inc.Method and apparatus for adaptive antenna sharing
US20140301278A1 (en)2011-11-072014-10-09Nokia Solutions And Networks OyMethod and apparatus for receiving uplink signals
US20140301345A1 (en)2011-11-172014-10-09Lg Electronics Inc.Method for receiving uplink signal, base station, method for transmitting uplink signal and user equipment
US20140307630A1 (en)2011-11-072014-10-16Ntt Docomo, Inc.Radio communication system, radio base station apparatus, user terminal and radio communication method
US20140340260A1 (en)2008-03-132014-11-20Cubic CorporationDigital beamforming antenna and datalink array
US20140341143A1 (en)2012-01-202014-11-20Lg Electronnics Inc,Method of sending/receiving control information and device therefor
US20140340255A1 (en)2013-04-232014-11-20Dali Systems Co. Ltd.Real-time locating system using gps time difference of arrival with digital off-air access units and remote units
US20140348077A1 (en)2012-12-032014-11-27Xiaogang ChenControl channel design for new carrier type (nct)
US20140348090A1 (en)2011-12-022014-11-27Nec CorporationMethod of providing control information for user equipment in lte communication system
US20140348131A1 (en)2012-06-252014-11-27Huawei Device Co., Ltd.Handover method, system, and device
US8902862B2 (en)2008-08-202014-12-02Qualcomm IncorporatedMethod and apparatus for sharing signals on a single channel
US20150003311A1 (en)2012-01-262015-01-01Panasonic Intellectual Property Corporation Of AmericaDiscontinuous reception operation with additional wake-up opportunities
US20150011197A1 (en)2009-10-162015-01-08ReVerb Networks, Inc.Self-optimizing wireless network
US20150016317A1 (en)2012-03-172015-01-15Lg Electronics Inc.Method for controlling transmission power of sounding reference signal in wireless communication system and apparatus for same
CN104335625A (en)2012-04-242015-02-04苹果公司Methods and apparatus for opportunistic radio resource allocation in multi-carrier communication systems
US20150049689A1 (en)2012-02-282015-02-19Lg Electronics Inc.Method for transmitting channel state information report and user equipment, and method for receiving channel state information report and base station
US20150092416A1 (en)2013-09-272015-04-02Hayward Industries, Inc.Light With Expanding Compression Member
US20150098410A1 (en)2013-09-192015-04-09Telefonaktiebolaget L M Ericsson (Publ)System and method for providing interference characteristics for interference mitigation
US20150117392A1 (en)2012-05-162015-04-30Telefonaktiebolaget L M Ericsson (Publ)Method and Arrangement in a Wireless Communication System
US20150118369A1 (en)2013-10-282015-04-30Elwha LlcNon-thermal electromagnetic sterilization
US20150131750A1 (en)2013-09-052015-05-14Feng XueAdaptive sectorization of a spational region for parallel multi-user transmissions
US20150131751A1 (en)2011-08-012015-05-14Blackberry LimitedJoint transmission using interference alignment
US20150133126A1 (en)2012-07-312015-05-14Huawei Technologies Co., Ltd.User equipment, network device and method for accessing network system
US20150181568A1 (en)2012-06-052015-06-25Lg Electronics Inc.Method and apparatus for receiving control information in wireless communication system
EP2889957A1 (en)2013-12-302015-07-01Clemens RheinfelderActive antenna system with distributed transceiver system
US9089002B2 (en)2010-05-162015-07-21Qualcomm IncorporatedEfficient group ID management for wireless local area networks (WLANs)
US9094180B2 (en)2009-08-242015-07-28Nokia Siemens Networks OyChannel-adaptive transmission in a distributed coordinated multi-point transmission system
US20150229372A1 (en)2014-02-072015-08-13Rearden, LlcSystems and methods for mapping virtual radio instances into physical volumes of coherence in distributed antenna wireless systems
US20150270882A1 (en)2001-04-262015-09-24Genghiscomm Holdings, LLCCoordinated Multipoint Systems
US20150271003A1 (en)2008-06-182015-09-24Centre Of Excellence In Wireless TechnologyPrecoding for single transmission streams in multiple antenna systems
US20150296533A1 (en)2012-06-252015-10-15Kt CorporationMethod and terminal for transmitting and receiving physical uplink data channel mapping information
WO2015160497A1 (en)2014-04-162015-10-22Rearden, LlcSystems and methods for concurrent spectrum usage within actively used spectrum
US9179495B1 (en)2003-07-082015-11-03Hewlett-Packard Development Company, L.P.Implementing “all wireless” network over WiFi equipment using “scheduled TDMA”
US20160013855A1 (en)2013-02-162016-01-14Cable Television Laboratories, Inc.Multiple-input multiple-output (mimo) communication system
US9252858B2 (en)2007-05-152016-02-02Lattice Semiconductor CorporationMulti-antenna transmitter for multi-tone signaling
US20160061027A1 (en)2014-08-272016-03-03Schlumberger Technology CorporationElectromagnetic Telemetry for Measurement and Logging While Drilling and Magnetic Ranging Between Wellbores
WO2016037305A1 (en)2014-09-082016-03-17Qualcomm IncorporatedFlexible transmissions on one or more frequency division duplexing resources
US20160094318A1 (en)2001-04-262016-03-31Genghiscomm Holdings, LLCSingle-Carrier OFDMA
US9307506B1 (en)2014-09-092016-04-05Sprint Communications Company L.P.Implementation of a fiber distributed antenna system network while maintaining synchronization
WO2016057304A1 (en)2014-10-092016-04-14Andrew Wireless Systems GmbhDistributed antenna system for mimo signals
US9331882B2 (en)2013-06-052016-05-03Telefonaktiebolaget L M Ericsson (Publ)Crest factor reduction of carrier aggregated signals
JP2016513940A (en)2013-03-122016-05-16リアデン リミテッド ライアビリティ カンパニー System and method for utilizing inter-cell multiplexing gain in wireless cellular systems via distributed input distributed output technology
US20160157146A1 (en)2008-07-072016-06-02Odyssey Wireless, Inc.Systems/methods of spatial multiplexing
US20160248559A1 (en)2013-10-082016-08-25Zte CorporationInter-Node Interference Reduction Method, Node and System
US20160302218A1 (en)2013-08-092016-10-13Telefonaktiebolaget L M Ericsson (Publ)First and Second Base Stations and Methods Performed Therein
US20160302028A1 (en)2012-02-152016-10-13Maxlinear, Inc.Method and system for broadband near-field communication (bnc) utilizing full spectrum capture (fsc) supporting bridging across wall
US20160353290A1 (en)2015-05-272016-12-01Telefonaktiebolaget L M Ericsson (Publ)Method to improve the performance in cell range expansion using location based codebook subset restriction
US20160374070A1 (en)2015-06-192016-12-22Intel IP CorporationControlling uplink transmissions in communication systems with scheduled trigger frames
US9698881B2 (en)2014-11-142017-07-04Telefonaktiebolaget Lm Ericsson (Publ)Feedback channel transmission and detection in multi antenna wireless communication systems
KR20180061394A (en)2015-10-232018-06-07삼성전자주식회사 Method and apparatus for transmitting and receiving channel state information in a mobile communication system
US10205513B1 (en)2015-03-272019-02-12Lockheed Martin CorporationSystem and method for improved beyond line-of-sight communications using natural phenomena
US20190385057A1 (en)2016-12-072019-12-19Arilou Information Security Technologies Ltd.System and Method for using Signal Waveform Analysis for Detecting a Change in a Wired Network
US10637554B2 (en)2015-11-052020-04-28Sony CorporationWireless communication method and wireless communication device
US10749583B2 (en)2017-06-142020-08-18Lg Electronics Inc.Method for transmitting and receiving channel state information in wireless communication system and device for the same
US10804985B2 (en)2017-05-172020-10-13Sony CorporationElectronic device and communication method
US10985811B2 (en)2004-04-022021-04-20Rearden, LlcSystem and method for distributed antenna wireless communications

Family Cites Families (235)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US2127656A (en)1934-04-251938-08-23Paul H TerryProduction of motion pictures of the animated cartoon type
US3085877A (en)1959-06-101963-04-16Robert J ReidMethod of producing animated motion pictures
US3335716A (en)1965-01-181967-08-15Gen ElectricDiagnostic thermography method and means
US3699856A (en)1970-04-011972-10-24Whittaker CorpMovement monitoring apparatus
SE365325B (en)1971-11-041974-03-18Rothfjell R
IT959979B (en)1972-06-281973-11-10Honeywell Inf Systems OPTICAL ASSOCIATIVE MEMORY
US3887925A (en)1973-07-311975-06-03IttLinearly polarized phased antenna array
US4075097A (en)1975-04-011978-02-21Monroe Auto Equipment CompanyOil filter with oil improving dissolving body
US4076097A (en)1976-08-041978-02-28Thomas Lowe ClarkeAugmented passive radiator loudspeaker
US4331225A (en)1978-04-251982-05-25Bolger John GPower control system for electrically driven vehicle
US4360797A (en)1978-05-021982-11-23The United States Of America As Represented By The United States Department Of EnergyCoded aperture imaging with uniformly redundant arrays
US4209780A (en)1978-05-021980-06-24The United States Of America As Represented By The United States Department Of EnergyCoded aperture imaging with uniformly redundant arrays
US4389670A (en)1981-12-301983-06-21The United States Of America As Represented By The United States Department Of EnergyElectronic method for autofluorography of macromolecules on two-D matrices
US4417791A (en)1982-08-191983-11-29Jonathan ErlandProcess for composite photography
US4688246A (en)1985-12-201987-08-18Zenith Electronics CorporationCATV scrambling system with compressed digital audio in synchronizing signal intervals
US4943811A (en)1987-11-231990-07-24Canadian Patents And Development LimitedDual polarization electromagnetic power reception and conversion system
CA1295019C (en)1987-11-241992-01-28John F. MartinMicrowave-powered aircraft
US4855061A (en)1988-04-261989-08-08Cpc Engineering CorporationMethod and apparatus for controlling the coagulant dosage for water treatment
CA2006481C (en)1989-12-191999-09-21Adrian W. AldenLow noise dual polarization electromagnetic power reception and conversion system
US5821989A (en)1990-06-111998-10-13Vrex, Inc.Stereoscopic 3-D viewing system and glasses having electrooptical shutters controlled by control signals produced using horizontal pulse detection within the vertical synchronization pulse period of computer generated video signals
US5699798A (en)1990-08-101997-12-23University Of WashingtonMethod for optically imaging solid tumor tissue
US5076687A (en)1990-08-281991-12-31Massachusetts Institute Of TechnologyOptical ranging apparatus
JP3082002B2 (en)1991-07-262000-08-28四国旅客鉄道株式会社 Railway wheel tread abnormality detection device
US5235416A (en)1991-07-301993-08-10The Government Of The United States Of America As Represented By The Secretary Of The Department Of Health & Human ServicesSystem and method for preforming simultaneous bilateral measurements on a subject in motion
US5227985A (en)1991-08-191993-07-13University Of MarylandComputer vision system for position monitoring in three dimensions using non-coplanar light sources attached to a monitored object
US5420622A (en)1991-09-231995-05-30Faroudja; Philippe Y. C.Stop frame animation system using reference drawings to position an object by superimposition of TV displays
DE69221987T2 (en)1991-11-011998-02-05Sega Enterprises Kk Imaging device attached to the head
US5305124A (en)1992-04-071994-04-19Hughes Aircraft CompanyVirtual image display system
JP2774738B2 (en)1992-05-271998-07-09シャープ株式会社 Image coding restoration system
US5903388A (en)1992-06-111999-05-11Sedlmayr Steven RHigh efficiency electromagnetic beam projector and systems and method for implementation thereof
US5304809A (en)1992-09-151994-04-19Luxtron CorporationLuminescent decay time measurements by use of a CCD camera
US5596339A (en)1992-10-221997-01-21University Of WashingtonVirtual retinal display with fiber optic point source
US5467104A (en)1992-10-221995-11-14Board Of Regents Of The University Of WashingtonVirtual retinal display
US6241622B1 (en)1998-09-182001-06-05Acushnet CompanyMethod and apparatus to determine golf ball trajectory and flight
US5575719A (en)1994-02-241996-11-19Acushnet CompanyMethod and apparatus to determine object striking instrument movement conditions
US7086954B2 (en)2001-02-142006-08-08Acushnet CompanyPerformance measurement system with fluorescent markers for golf equipment
US6758759B2 (en)2001-02-142004-07-06Acushnet CompanyLaunch monitor system and a method for use thereof
US5327066A (en)1993-05-251994-07-05Intellectual Property Development Associates Of Connecticut, Inc.Methods and apparatus for dispensing a consumable energy source to a vehicle
US5440428A (en)1993-09-301995-08-08Hughes Aircraft CompanyAutomotive instrument 3-D virtual image display
US5503350A (en)1993-10-281996-04-02Skysat Communications Network CorporationMicrowave-powered aircraft
US5606165A (en)1993-11-191997-02-25Ail Systems Inc.Square anti-symmetric uniformly redundant array coded aperture imaging system
US5472467A (en)1994-03-141995-12-05Pfeffer; Jack R.Self-supporting filter composite
US5519826A (en)1994-04-291996-05-21Atari Games CorporationStop motion animation system
US6421600B1 (en)1994-05-052002-07-16H. R. Ross Industries, Inc.Roadway-powered electric vehicle system having automatic guidance and demand-based dispatch features
US5573090A (en)1994-05-051996-11-12H. R. Ross Industries, Inc.Raodway-powered electric vehicle system having onboard power metering and communication channel features
US5479026A (en)1994-05-161995-12-26United Technologies CorporationSystem having optically encoded information
US5424533A (en)1994-06-211995-06-13United Technologies CorporationSelf illuminating touch activated optical switch
NZ293713A (en)1994-09-281997-09-22William Richard FrightLaser surface scanning system: shape of surface recorded by determining relative positions of laser, camera, and laser spot on surface with respect to fixed reference point
US5689577A (en)1994-10-141997-11-18Picker International, Inc.Procedure for the simplification of triangular surface meshes for more efficient processing
US5480341A (en)1994-10-211996-01-02Strottman International, Inc.Educational skeleton toy with outer shell
US5653751A (en)1994-12-071997-08-05Samiy; NassrollahSystems and methods for projecting an image onto a retina
US5569317A (en)1994-12-221996-10-29Pitney Bowes Inc.Fluorescent and phosphorescent tagged ink for indicia
US5930741A (en)1995-02-281999-07-27Virtual Technologies, Inc.Accurate, rapid, reliable position sensing using multiple sensing technologies
US6020892A (en)1995-04-172000-02-01Dillon; KellyProcess for producing and controlling animated facial representations
US5852672A (en)1995-07-101998-12-22The Regents Of The University Of CaliforniaImage system for three dimensional, 360 DEGREE, time sequence surface mapping of moving objects
US5950124A (en)1995-09-061999-09-07Telxon CorporationCellular communication system with dynamically modified data transmission parameters
US6710797B1 (en)1995-09-202004-03-23Videotronic SystemsAdaptable teleconferencing eye contact terminal
JP3745802B2 (en)1995-10-132006-02-15株式会社日立製作所 Image generation / display device
US5644207A (en)1995-12-111997-07-01The Johns Hopkins UniversityIntegrated power source
WO1997022964A1 (en)1995-12-181997-06-26Bell Communications Research, Inc.Flat virtual displays for virtual reality
US5756026A (en)1996-01-051998-05-26Fiberco, Inc.Method for control of post molding fabric curl and distortion
US5701132A (en)1996-03-291997-12-23University Of WashingtonVirtual retinal display with expanded exit pupil
US5930314A (en)1996-05-311999-07-27Massachusetts Institute Of TechnologyCoded aperture imaging
US5910834A (en)1996-07-311999-06-08Virtual-Eye.Com, Inc.Color on color visual field testing method and apparatus
US5864384A (en)1996-07-311999-01-26Mcclure; Richard J.Visual field testing method and apparatus using virtual reality
US5878283A (en)1996-09-051999-03-02Eastman Kodak CompanySingle-use camera with motion sensor
CA2265875C (en)1996-09-092007-01-16Dennis Jay DuprayLocation of a mobile station
US5757005A (en)1996-10-041998-05-26California Institute Of TechnologyAdvanced x-ray imaging spectrometer
JP3873401B2 (en)1996-11-192007-01-24コニカミノルタセンシング株式会社 3D measurement system
GB9626825D0 (en)1996-12-241997-02-12Crampton Stephen JAvatar kiosk
US6792259B1 (en)1997-05-092004-09-14Ronald J. PariseRemote power communication system and method thereof
US7068991B2 (en)1997-05-092006-06-27Parise Ronald JRemote power recharge for electronic equipment
US5982139A (en)1997-05-091999-11-09Parise; Ronald J.Remote charging system for a vehicle
US5930379A (en)1997-06-161999-07-27Digital Equipment CorporationMethod for detecting human body motion in frames of a video sequence
US6141104A (en)1997-09-092000-10-31Image Guided Technologies, Inc.System for determination of a location in three dimensional space
US5940166A (en)1997-09-121999-08-17Miller; Joel A.Binocular indirect ophthalmoscope
US6154321A (en)1998-01-202000-11-28University Of WashingtonVirtual retinal display with eye tracking
US6097353A (en)1998-01-202000-08-01University Of WashingtonAugmented retinal display with view tracking and data positioning
US6043799A (en)1998-02-202000-03-28University Of WashingtonVirtual retinal display with scanner array for generating multiple exit pupils
EP1061851B1 (en)1998-03-072002-02-20Claus-Frenz ClaussenMethod and device for evaluating an kinetic pattern
US6271900B1 (en)1998-03-312001-08-07Intel CorporationIntegrated microlens and color filter structure
US5903397A (en)1998-05-041999-05-11University Of WashingtonDisplay with multi-surface eyepiece
US6072496A (en)1998-06-082000-06-06Microsoft CorporationMethod and system for capturing and representing 3D geometry, color and shading of facial expressions and other animated objects
US20050105772A1 (en)1998-08-102005-05-19Nestor VoronkaOptical body tracker
US6229503B1 (en)1998-08-252001-05-08Robert Mays, Jr.Miniature personal display
US6533674B1 (en)1998-09-182003-03-18Acushnet CompanyMultishutter camera system
US6149719A (en)1998-10-282000-11-21Hewlett-Packard CompanyLight sensitive invisible ink compositions and methods for using the same
US6487516B1 (en)1998-10-292002-11-26Netmor Ltd.System for three dimensional positioning and tracking with dynamic range extension
US7483049B2 (en)1998-11-202009-01-27Aman James AOptimizations for live event, real-time, 3D object tracking
RU2143775C1 (en)1999-03-251999-12-27Стребков Дмитрий СеменовичPower transmission method and device
JP2001007007A (en)1999-06-232001-01-12Ushio Sogo Gijutsu Kenkyusho:KkWavelength monitoring device for excimer laser light for exposing semiconductor
JP3821614B2 (en)1999-08-202006-09-13独立行政法人科学技術振興機構 Image input device
US6633294B1 (en)2000-03-092003-10-14Seth RosenthalMethod and apparatus for using captured high density motion for animation
US6353422B1 (en)2000-03-312002-03-05Stephen G. PerlmanVirtual display system and method
US6364253B1 (en)2000-04-252002-04-02The United States Of America As Represented By The Secretary Of The NavyRemote piloted vehicle powered by beamed radiation
US6618858B1 (en)2000-05-112003-09-09At Home Liquidating TrustAutomatic identification of a set-top box user to a network
TW510131B (en)2000-05-242002-11-11Chi Mei Electronic CorpImage input/output device
US6554706B2 (en)2000-05-312003-04-29Gerard Jounghyun KimMethods and apparatus of displaying and evaluating motion data in a motion game apparatus
US6643386B1 (en)2000-08-102003-11-04Omnivision Technologies, Inc.Method and apparatus for adding watermarks to images and/or video data streams
US6950104B1 (en)2000-08-302005-09-27Microsoft CorporationMethods and systems for animating facial features, and methods and systems for expression transformation
US6850872B1 (en)2000-08-302005-02-01Microsoft CorporationFacial image processing methods and systems
US6939940B2 (en)2000-09-132005-09-06The United States Of America As Represented By The Administrator Of The National Aeronautics And Space AdministrationLiquid crystalline thermosets from ester, ester-imide, and ester-amide oligomers
WO2002056055A2 (en)2000-09-292002-07-18Massachusetts Inst TechnologySystems and methods for coded aperture imaging of radiation- emitting sources
US7127081B1 (en)2000-10-122006-10-24Momentum Bilgisayar, Yazilim, Danismanlik, Ticaret, A.S.Method for tracking motion of a face
JP2002152995A (en)2000-11-102002-05-24Toyota Motor Corp Power receiving system
JP4636479B2 (en)2000-11-172011-02-23三井化学東セロ株式会社 Polyolefin multilayer film and package
US7587520B1 (en)2001-01-242009-09-083Dlabs Inc. Ltd.Image display system with visual server
US20040104935A1 (en)2001-01-262004-06-03Todd WilliamsonVirtual reality immersion system
EP1231647B1 (en)2001-02-082008-07-23STMicroelectronics LimitedReference data coding in solid state image sensors
TW493142B (en)2001-03-142002-07-01Ind Tech Res InstMethod for building progressive mesh
US6973481B2 (en)2001-03-232005-12-06Emailias LlcSystem and method for creating and managing forwarding email address
US6685326B2 (en)2001-06-082004-02-03University Of Southern CaliforniaRealistic scene lighting simulation
CA2353021C (en)2001-07-122010-03-30Momentous.Ca CorporationMethod for reducing the receipt of unsolicited bulk e-mail and providing anonymity to an e-mail user
US6592465B2 (en)2001-08-022003-07-15Acushnet CompanyMethod and apparatus for monitoring objects in flight
JP2005502449A (en)2001-08-242005-01-27ドーバー ケミカル コーポレイション Controlled release of additives in fluid systems.
US20030169339A1 (en)2001-10-012003-09-11Digeo. Inc.System and method for tracking an object during video communication
US7164238B2 (en)2001-11-142007-01-16Astral Communications, Inc.Energy savings device and method for a resistive and/or an inductive load and/or a capacitive load
US8137210B2 (en)2001-12-052012-03-20Acushnet CompanyPerformance measurement system with quantum dots for object identification
US6654521B2 (en)2002-01-232003-11-25Teraxion Inc.Diffraction compensation of FBG phase masks for multi-channel sampling applications
US20030149726A1 (en)2002-02-052003-08-07At&T Corp.Automating the reduction of unsolicited email in real time
US7339521B2 (en)2002-02-202008-03-04Univ WashingtonAnalytical instruments using a pseudorandom array of sources, such as a micro-machined mass spectrometer or monochromator
KR20050000369A (en)2002-03-122005-01-03메나키, 엘엘씨Motion tracking system and method
US7196728B2 (en)2002-03-272007-03-27Ericsson, Inc.Method and apparatus for displaying images in combination with taking images
US20030200227A1 (en)2002-04-192003-10-23Ressler M. KyleVehicle and driver identification system
US7421039B2 (en)2002-06-042008-09-02Lucent Technologies Inc.Method and system employing antenna arrays
US20040002835A1 (en)2002-06-262004-01-01Nelson Matthew A.Wireless, battery-less, asset sensor and communication system: apparatus and method
JP2004045668A (en)2002-07-102004-02-12Ricoh Co Ltd Developer for developing electrostatic image, image forming apparatus, and image forming method
US7920590B2 (en)2002-07-122011-04-05Spyder Navigations L.L.C.Wireless communications system having built-in packet data compression and support for enabling non-standard features between network elements
US7373133B2 (en)2002-09-182008-05-13University Of Pittsburgh - Of The Commonwealth System Of Higher EducationRecharging method and apparatus
SE524541C2 (en)2002-11-182004-08-24Uppsala Power Man Consultants Power storage systems and vehicles fitted with such
US7089319B2 (en)2002-12-092006-08-08Anton LysenkoMethod and system for instantaneous on-demand delivery of multimedia content over a communication network with aid of content capturing component, delivery-on-demand client and dynamically mapped resource locator server
KR100507780B1 (en)2002-12-202005-08-17한국전자통신연구원Apparatus and method for high-speed marker-free motion capture
US20040153512A1 (en)2003-01-162004-08-05Friend Jeffrey EdwardDynamic online email catalog and trust relationship management system and method
JP2004229425A (en)2003-01-232004-08-12Toyota Motor Corp Vehicle charging device, vehicle bumper and vehicle parking system
US6919847B2 (en)2003-01-232005-07-19The Regents Of The University Of CaliforniaSystem using a megawatt class millimeter wave source and a high-power rectenna to beam power to a suspended platform
US6919857B2 (en)2003-01-272005-07-19Ethertronics, Inc.Differential mode capacitively loaded magnetic dipole antenna
JP4182764B2 (en)2003-02-042008-11-19トヨタ自動車株式会社 Wireless power receiver for vehicle
US9177387B2 (en)2003-02-112015-11-03Sony Computer Entertainment Inc.Method and apparatus for real time motion capture
US6822582B2 (en)2003-02-252004-11-23Hunter Engineering CompanyRadio frequency identification automotive service systems
KR20040077228A (en)2003-02-282004-09-04배대환Wireless charging system using rectenna
US7257237B1 (en)2003-03-072007-08-14Sandia CorporationReal time markerless motion tracking using linked kinematic chains
US7333113B2 (en)2003-03-132008-02-19Sony CorporationMobile motion capture cameras
US7068277B2 (en)2003-03-132006-06-27Sony CorporationSystem and method for animating a digital facial model
US7218320B2 (en)2003-03-132007-05-15Sony CorporationSystem and method for capturing facial and body motion
US7358972B2 (en)2003-05-012008-04-15Sony CorporationSystem and method for capturing facial and body motion
US7356164B2 (en)2003-05-302008-04-08Lucent Technologies Inc.Method and apparatus for finding feature correspondences between images captured in real-world environments
US7646802B2 (en)2003-06-022010-01-12Qualcomm IncorporatedCommunication receiver with hybrid equalizer
ATE325354T1 (en)2003-07-022006-06-15Berner Fachhochschule Hochschu METHOD AND DEVICE FOR IMAGING WITH CODED APERTURE
US7406190B2 (en)2003-07-242008-07-29Lucidyne Technologies, Inc.Wood tracking by identification of surface characteristics
AU2004260518B2 (en)2003-07-242009-11-26Lucidyne Technologies, Inc.Wood tracking by identification of surface characteristics
US7152984B1 (en)2003-08-132006-12-26Microfab Technologies Inc.Cat's eye retro-reflector array coding device and method of fabrication
JP2005073313A (en)2003-08-262005-03-17Asahi Glass Co Ltd Electric vehicle power supply system, electric vehicle used in the system, and power supply device
CA2539205A1 (en)2003-09-172005-03-31Segan Industries, Inc.Flash imaging devices, methods for making and using the same
US7369681B2 (en)2003-09-182008-05-06Pitney Bowes Inc.System and method for tracking positions of objects in space, time as well as tracking their textual evolution
JP4494837B2 (en)2003-12-262010-06-30Sriスポーツ株式会社 Golf swing diagnostic system
US8872914B2 (en)2004-02-042014-10-28Acushnet CompanyOne camera stereo system
US7246923B2 (en)2004-02-112007-07-243M Innovative Properties CompanyReshaping light source modules and illumination systems using the same
GB2414190B (en)2004-03-262007-03-07Sumitomo Rubber IndGolf swing diagnosing system
GB2414683B (en)2004-03-262007-03-07Yoshiaki ShiraiGolf swing measuring system
US7885354B2 (en)2004-04-022011-02-08Rearden, LlcSystem and method for enhancing near vertical incidence skywave (“NVIS”) communication using space-time coding
TWI236546B (en)2004-04-152005-07-21Pixart Imaging IncImage sensing device of improving image quality and reducing color shift effect
CA2563478A1 (en)2004-04-162005-10-27James A. AmanAutomatic event videoing, tracking and content generation system
WO2005124660A2 (en)2004-06-122005-12-29University Of Southern CaliforniaPerformance relighting and reflectance transformation with time-multiplexed illumination
US7110463B2 (en)*2004-06-302006-09-19Qualcomm, IncorporatedEfficient computation of spatial filter matrices for steering transmit diversity in a MIMO communication system
US7075438B2 (en)2004-07-302006-07-11Hewlett-Packard Development Company, L.P.Tagging systems
US8023589B2 (en)*2004-08-092011-09-20Texas Instruments IncorporatedWireless MIMO transmitter with antenna and tone precoding blocks
WO2006029007A2 (en)2004-09-022006-03-16E-SocDevice for brain stimulation using rf energy harvesting
US20060055706A1 (en)2004-09-152006-03-16Perlman Stephen GApparatus and method for capturing the motion of a performer
US7777199B2 (en)2004-09-172010-08-17Wichita State UniversitySystem and method for capturing image sequences at ultra-high framing rates
GB2418827B (en)2004-09-282010-11-10British Broadcasting CorpMethod and system for providing a volumetric representation of a 3-Dimensional object
US7554549B2 (en)2004-10-012009-06-30Sony CorporationSystem and method for tracking facial muscle and eye motion for computer graphics animation
WO2006062908A2 (en)2004-12-092006-06-15Image Metrics LimitedOptical motion capturing with fill-in of missing marker points using a human model derived from principal component analysis
US7075254B2 (en)2004-12-142006-07-11Lutron Electronics Co., Inc.Lighting ballast having boost converter with on/off control and method of ballast operation
US20060127836A1 (en)2004-12-142006-06-15Huafeng WenTooth movement tracking system
EP2319406A1 (en)2004-12-282011-05-11Hyperspectral Imaging, IncHyperspectral/multispectral imaging in determination, assessment and monitoring of systemic physiology and shock
CN101091340A (en)2004-12-282007-12-19松下电器产业株式会社 Wireless communication device and wireless communication method
US7671321B2 (en)2005-01-182010-03-02Rearden, LlcApparatus and method for capturing still images and video using coded lens imaging techniques
US7767949B2 (en)2005-01-182010-08-03Rearden, LlcApparatus and method for capturing still images and video using coded aperture techniques
WO2006091499A2 (en)2005-02-242006-08-31Firefly Power Technologies, Inc.Method, apparatus and system for power transmitssion
US7605861B2 (en)2005-03-102009-10-20Onlive, Inc.Apparatus and method for performing motion capture using shutter synchronization
AU2006225115B2 (en)2005-03-162011-10-06Lucasfilm Entertainment Company Ltd.Three- dimensional motion capture
US7801521B2 (en)2005-05-182010-09-21Telefonaktiebolaget L M Ericsson (Publ)System and method for communicating with aircraft through cellular base station towers
US8307922B2 (en)2005-05-242012-11-13Rearden, LlcSystem and method for powering an aircraft using radio frequency signals and feedback
US7603141B2 (en)2005-06-022009-10-13Qualcomm, Inc.Multi-antenna station with distributed antennas
US8016688B2 (en)2005-08-152011-09-13Acushnet CompanyMethod and apparatus for measuring ball launch conditions
US7720259B2 (en)2005-08-262010-05-18Sony CorporationMotion capture using primary and secondary markers
US8054312B2 (en)2005-08-262011-11-08Sony CorporationMaterial for motion capture costumes and props
US8659668B2 (en)2005-10-072014-02-25Rearden, LlcApparatus and method for performing motion capture using a random pattern on capture surfaces
US7755619B2 (en)2005-10-132010-07-13Microsoft CorporationAutomatic 3D face-modeling from video
EP1791278A1 (en)2005-11-292007-05-30Interuniversitair Microelektronica Centrum (IMEC)Device and method for calibrating MIMO systems
GB2434935A (en)2006-02-062007-08-08Qinetiq LtdCoded aperture imager using reference object to form decoding pattern
GB2434937A (en)2006-02-062007-08-08Qinetiq LtdCoded aperture imaging apparatus performing image enhancement
GB0602380D0 (en)2006-02-062006-03-15Qinetiq LtdImaging system
EP2025072A1 (en)2006-06-022009-02-18Qualcomm IncorporatedMulti-antenna station with distributed antennas
US7548272B2 (en)2006-06-072009-06-16Onlive, Inc.System and method for performing motion capture using phosphor application techniques
US7567293B2 (en)2006-06-072009-07-28Onlive, Inc.System and method for performing motion capture by strobing a fluorescent lamp
US7581702B2 (en)2006-06-092009-09-01Insitu, Inc.Wirelessly controlling unmanned aircraft and accessing associated surveillance data
US8330823B2 (en)2006-11-012012-12-11Sony CorporationCapturing surface in motion picture
CN102017553B (en)2006-12-262014-10-15大力系统有限公司 Method and system for baseband predistortion linearization in a multi-channel broadband communication system
US7792423B2 (en)2007-02-062010-09-07Mitsubishi Electric Research Laboratories, Inc.4D light field cameras
AU2014200745B2 (en)2007-08-202016-09-29Rearden, LlcSystem and method for distributed input distributed output wireless communications
US20090067198A1 (en)2007-08-292009-03-12David Jeffrey GrahamContactless power supply
US8144153B1 (en)2007-11-202012-03-27Lucasfilm Entertainment Company Ltd.Model production for animation libraries
US7943856B2 (en)2007-12-142011-05-17Samsung Electronics Co., Ltd.Composition for producing printed circuit board and printed circuit board using the same
US8243353B1 (en)2008-04-072012-08-14Applied Science Innovations, Inc.Holography-based device, system and method for coded aperture imaging
US8537745B2 (en)*2008-06-022013-09-17Qualcomm IncorporatedMultiplexing arrangements for multiple receive antennas
KR101483714B1 (en)2008-06-182015-01-16삼성전자 주식회사Apparatus and method for capturing digital image
US8340605B2 (en)2008-08-062012-12-25Qualcomm IncorporatedCoordinated transmissions between cells of a base station in a wireless communications system
GB0822281D0 (en)2008-12-062009-01-14Qinetiq LtdOptically diverse coded aperture imaging
CN101494491B (en)*2009-03-042013-04-17北京邮电大学Method and apparatus for processing acceptance signal of multiaerial system
US8600308B2 (en)*2009-06-172013-12-03Futurewei Technologies, Inc.Channel state information feedback for coordinated multiple points transmission
WO2010148552A1 (en)*2009-06-232010-12-29上海贝尔股份有限公司Method and apparatus for adjusting uplink and downlink reciprocity error in tdd system
EP2282574B1 (en)*2009-08-072017-08-09Intel Deutschland GmbHArrangement and method for estimating network traffic based on angle of arrival determination in a cellular network
CN102025396B (en)2009-09-232013-09-11华为技术有限公司Filtering processing method, and system and equipment
KR101676675B1 (en)*2009-10-302016-11-29삼성전자주식회사Apparatus and method for calibration for multicell multiple input multiple output transmission in multiple antenna system
TW201121568A (en)2009-10-312011-07-01Abbott LabAntibodies to receptor for advanced glycation end products (RAGE) and uses thereof
CN102195755A (en)*2010-03-102011-09-21松下电器产业株式会社Method and equipment for feeding back pre-coded matrix index of dual polarized antenna
EP2577883A4 (en)*2010-05-282015-07-15Optis Cellular Technology LlcMethod, apparatus and system for antenna calibration
US8964591B2 (en)2010-06-292015-02-24Lg Electronics Inc.Method and device for transmitting/receiving channel state information in a wireless communication system
CN102340339B (en)2010-07-162014-03-26上海贝尔股份有限公司Method for calibrating antenna reciprocity in base station of wireless network and apparatus thereof
US20130128760A1 (en)2010-08-272013-05-23Hitachi, Ltd.Distributed antenna system and wireless communication method used in said system
US9107199B2 (en)2010-09-302015-08-11Lg Electronics Inc.Method for transmitting signal in multi-node system
EP2647259B1 (en)2010-12-032018-01-03Interdigital Patent Holdings, Inc.Methods and apparatus for performing multi-radio access technology carrier aggregation
CN102045123B (en)*2010-12-142014-04-30北京邮电大学Radio frequency calibration method and device capable of realizing channel reciprocity of time division duplex wireless communication system
KR20120076891A (en)*2010-12-302012-07-10주식회사 팬택Communicating method with base station and terminal, base station thereof and terminal thereof in coordinated multi-point transmission/reception system
KR102585652B1 (en)*2011-01-072023-10-05인터디지탈 패튼 홀딩스, 인크Communicating channel state information (csi) of multiple transmission points
EP2661819B1 (en)*2011-01-072018-07-25Interdigital Patent Holdings, Inc.Method, system and apparatus for downlink shared channel reception in cooperative multipoint transmissions
KR101830738B1 (en)2011-02-222018-04-04엘지전자 주식회사Method of controlling uplink transmission power at ue in wireless communication system and apparatus thereof
GB201104873D0 (en)2011-03-232011-05-04Mbda Uk LtdEncoded image processing apparatus and method
EP2725845B1 (en)2011-08-052018-05-16Panasonic Intellectual Property Corporation of AmericaTerminal, transmitting device, reception quality reporting method and reception method
US8469800B2 (en)2011-08-242013-06-25IgtMobile device interfaces at an electronic gaming machine
JP5856306B2 (en)2011-10-052016-02-09アナログ・デバイシズ・インコーポレーテッド Two-wire communication system for high-speed data and power distribution
US9842684B2 (en)2012-11-162017-12-12Witricity CorporationSystems and methods for wireless power system with improved performance and/or ease of use
RU2767777C2 (en)*2013-03-152022-03-21Риарден, ЛлкSystems and methods of radio frequency calibration using the principle of reciprocity of channels in wireless communication with distributed input - distributed output
US9961418B2 (en)2014-06-202018-05-013M Innovative Properties CompanyData communication appratus, system, and method

Patent Citations (828)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4003016A (en)1975-10-061977-01-11The United States Of America As Represented By The Secretary Of The NavyDigital beamforming system
US4253193A (en)1977-11-051981-02-24The Marconi Company LimitedTropospheric scatter radio communication systems
US4771289A (en)1982-05-281988-09-13Hazeltine CorporationBeamforming/null-steering adaptive array
US4564935A (en)1984-01-101986-01-14The United States Of America As Represented By The Secretary Of The Air ForceTropospheric scatter communication system having angle diversity
US6041365A (en)1985-10-292000-03-21Kleinerman; AurelApparatus and method for high performance remote application gateway servers
CA1307842C (en)1988-12-281992-09-22Adrian William AldenDual polarization microstrip array antenna
US5045862A (en)1988-12-281991-09-03Her Majesty The Queen In Right Of Canada, As Represented By The Minister Of CommunicationsDual polarization microstrip array antenna
JPH02210897A (en)1989-02-101990-08-22Oki Electric Ind Co LtdDaisy chain connection system
US5088091A (en)1989-06-221992-02-11Digital Equipment CorporationHigh-speed mesh connected local area network
US5097485A (en)1989-10-101992-03-17Hughes Aircraft CompanyHf high data rate modem
US5095500A (en)1989-12-071992-03-10Motorola, Inc.Cellular radiotelephone diagnostic system
CA2011298C (en)1990-03-011999-05-25Adrian William AldenDual polarization dipole array antenna
US5400037A (en)1991-05-311995-03-21East; Thomas W. R.Self-focusing antenna array
US5315309A (en)1991-09-061994-05-24Mcdonnell Douglas Helicopter CompanyDual polarization antenna
US5600326A (en)1991-12-161997-02-04Martin Marietta Corp.Adaptive digital beamforming architecture and algorithm for nulling mainlobe and multiple sidelobe radar jammers while preserving monopulse ratio angle estimation accuracy
US5377183A (en)1992-04-131994-12-27Ericsson-Ge Mobile Communications Inc.Calling channel in CDMA communications system
US5483667A (en)1993-07-081996-01-09Northern Telecom LimitedFrequency plan for a cellular network
US6005856A (en)1993-11-011999-12-21Omnipoint CorporationCommunication protocol for spread spectrum wireless communication system
US5555257A (en)1994-01-111996-09-10Ericsson Ge Mobile Communications Inc.Cellular/satellite communications system with improved frequency re-use
US6052582A (en)1994-03-172000-04-18Endlink CorporationSectorized multi-function communication system
US6459900B1 (en)1994-06-282002-10-01Littlefeet, Inc.Methods of operating arrangements of base transceiver stations in an area-covering network
US5983104A (en)1994-08-191999-11-09Telia AbMobile communications system with mobile unit speed identification features
US5661765A (en)1995-02-081997-08-26Mitsubishi Denki Kabushiki KaishaReceiver and transmitter-receiver
GB2300547A (en)1995-05-021996-11-06Plessey Semiconductors LtdWireless LANs with frequency-hopping
US6005516A (en)1995-06-081999-12-21Metawave Communications CorporationDiversity among narrow antenna beams
US5838671A (en)1995-06-231998-11-17Ntt Mobile Communications Network Inc.Method and apparatus for call admission control in CDMA mobile communication system
US6421543B1 (en)1996-01-292002-07-16Ericsson Inc.Cellular radiotelephone base stations and methods using selected multiple diversity reception
US5809422A (en)1996-03-081998-09-15Watkins Johnson CompanyDistributed microcellular communications system
US5742253A (en)1996-03-121998-04-21California Institute Of TechnologySystem and method for controlling the phase of an antenna array
US7437177B2 (en)1996-06-272008-10-14Interdigital Communications Corp.Method employed by a base station for controlling initial power ramp-up using short codes
US6888899B2 (en)1996-08-292005-05-03Cisco Technology, Inc.Spatio-temporal processing for communication
US6061021A (en)1996-10-222000-05-09Sagem SaLocatable mobile cellular telephony terminal
US7310680B1 (en)1996-12-312007-12-18Broadware Technologies, Inc.Video and audio streaming for multiple users
US20020181444A1 (en)1997-01-172002-12-05Anthony AcamporaHybrid universal broadband telecommunications using small radio cells interconnected by free-space optical links
US5872814A (en)1997-02-241999-02-16At&T Wireless Services Inc.Method for linearization of RF transmission electronics using baseband pre-distortion in T/R compensation pilot signals
US6308080B1 (en)1997-05-162001-10-23Texas Instruments IncorporatedPower control in point-to-multipoint systems
US20050239406A1 (en)1997-05-232005-10-27Shattil Steve JCancellation system for frequency reuse in microwave communications
US6925127B1 (en)1997-07-222005-08-02Ericsson Inc.Method and apparatus for subtracting multiple rays of multiple interfering received signals
US6760603B1 (en)1997-09-152004-07-06Kathrein-Werke KgCompact dual-polarized adaptive antenna array communication method and apparatus
US6519478B1 (en)1997-09-152003-02-11Metawave Communications CorporationCompact dual-polarized adaptive antenna array communication method and apparatus
WO1999023767A1 (en)1997-10-311999-05-14Interdigital Technology CorporationCommunication station with multiple antennas
CN1538636A (en)1997-10-312004-10-20�����ּ�����˾Communication station with multiple antennas
US20020061004A1 (en)1997-10-312002-05-23Lomp Gary R.Communication station with multiple antennas
CN1256803A (en)1997-11-032000-06-14摩托罗拉公司Antenna beam patterns having wide nulls
US6061023A (en)1997-11-032000-05-09Motorola, Inc.Method and apparatus for producing wide null antenna patterns
US6014107A (en)1997-11-252000-01-11The United States Of America As Represented By The Secretary Of The NavyDual orthogonal near vertical incidence skywave antenna
US7299071B1 (en)1997-12-102007-11-20Arraycomm, LlcDownlink broadcasting by sequential transmissions from a communication station having an antenna array
US6252912B1 (en)1997-12-242001-06-26General Dynamics Government Systems CorporationAdaptive predistortion system
JPH11252613A (en)1998-03-051999-09-17Tsushin Hoso KikoMobile communication system
US6484030B1 (en)1998-03-092002-11-19AlcatelHandover from a microcell layer to a macrocell layer in a two-layer cell of a telecommunication network
US6668161B2 (en)1998-05-012003-12-23Arraycomm, Inc.Determining a spatial signature using a robust calibration signal
US6963742B2 (en)1998-05-012005-11-08Arraycomm, Inc.Periodic calibration on a communications channel
US6654590B2 (en)1998-05-012003-11-25Arraycomm, Inc.Determining a calibration function using at least one remote terminal
US6411612B1 (en)1998-05-192002-06-25Harris CommunicationSelective modification of antenna directivity pattern to adaptively cancel co-channel interference in TDMA cellular communication system
US6445910B1 (en)1998-07-282002-09-03Siemens AktiengesellschaftReception diversity method, and a radio communication system using diversity reception
US6377782B1 (en)1999-03-012002-04-23Mediacell, Inc.Method and apparatus for communicating between a client device and a linear broadband network
WO2000054463A1 (en)1999-03-052000-09-14Telefonaktiebolaget Lm Ericsson (Publ)Method for bandwidth adapted utilization
US6442151B1 (en)1999-04-062002-08-27Ericsson Inc.System and method for variable reassignment of transmission channels
US6804311B1 (en)1999-04-082004-10-12Texas Instruments IncorporatedDiversity detection for WCDMA
US6763225B1 (en)1999-05-262004-07-13Motorola, Inc.Phase alignment transmit diversity system for radio communications systems
US7095723B2 (en)1999-05-282006-08-22Interdigital Technology CorporationBase station for code group synchronization
US20020097705A1 (en)1999-05-282002-07-25Interdigital Technology CorporationBase station for code group synchronization
US6453177B1 (en)1999-07-142002-09-17Metawave Communications CorporationTransmitting beam forming in smart antenna array system
US6067290A (en)1999-07-302000-05-23Gigabit Wireless, Inc.Spatial multiplexing in a cellular network
US6275738B1 (en)1999-08-192001-08-14Kai Technologies, Inc.Microwave devices for medical hyperthermia, thermotherapy and diagnosis
US6400761B1 (en)1999-09-152002-06-04Princeton UniversityMethod and apparatus for adaptively compensating channel or system variations in precoded communications system
US6320853B1 (en)1999-09-272001-11-20Metawave Communications CorporationMethod of phase recovery in cellular communication systems
US6799026B1 (en)1999-11-092004-09-28Kathrein-Werke KgHandset diversity in wireless communications system
US7013144B2 (en)1999-11-242006-03-14Fujitsu LimitedBase station control equipment, mobile station equipment, and radio communication system
US20010031647A1 (en)1999-12-012001-10-18Scherzer Shimon B.Adaptive antenna array wireless data access point
US6901062B2 (en)1999-12-012005-05-31Kathrein-Werke KgAdaptive antenna array wireless data access point
US20020051433A1 (en)1999-12-232002-05-02Institut National De La Recherche ScientifiqueInterference suppression in CDMA systems
US6232921B1 (en)2000-01-112001-05-15Lucent Technologies Inc.Method and system for adaptive signal processing for an antenna array
US6888809B1 (en)2000-01-132005-05-03Lucent Technologies Inc.Space-time processing for multiple-input, multiple-output, wireless systems
JP2001217759A (en)2000-01-312001-08-10Matsushita Electric Ind Co Ltd Wireless communication device and wireless communication method using adaptive array
US7016649B1 (en)2000-03-172006-03-21Kathrein-Werke KgSpace-time and space-frequency hopping for capacity enhancement of mobile data systems
US6473467B1 (en)2000-03-222002-10-29Qualcomm IncorporatedMethod and apparatus for measuring reporting channel state information in a high efficiency, high performance communications system
US6448937B1 (en)2000-04-252002-09-10Lucent Technologies Inc.Phased array antenna with active parasitic elements
JP2004502376A (en)2000-06-022004-01-22ノキア コーポレーション Closed loop feedback system to improve down link performance
US20050157683A1 (en)2000-06-022005-07-21Nokia Networks OyClosed loop feedback system for improved down link performance
WO2002001732A2 (en)2000-06-022002-01-03Nokia CorporationClosed loop feedback system for improved down link performance
US20020027985A1 (en)2000-06-122002-03-07Farrokh Rashid-FarrokhiParallel processing for multiple-input, multiple-output, DSL systems
US20040095907A1 (en)2000-06-132004-05-20Agee Brian G.Method and apparatus for optimization of wireless multipoint electromagnetic communication networks
US7248841B2 (en)2000-06-132007-07-24Agee Brian GMethod and apparatus for optimization of wireless multipoint electromagnetic communication networks
US6978150B2 (en)2000-06-302005-12-20Nec CorporationApparatus and method for transmission power balance adjustment in a mobile cellular system
US6323823B1 (en)2000-07-172001-11-27Metawave Communications CorporationBase station clustered adaptive antenna array
US7194006B2 (en)2000-07-182007-03-20Kathrein-Werke KgDirected maximum ratio combining methods and systems for high data rate traffic
US7116723B2 (en)2000-07-212006-10-03Samsung Electronics Co., Ltd.Closed loop transmit diversity method and apparatus using complex basis vector sets for antenna selection
US6834043B1 (en)2000-07-242004-12-21Motorola, Inc.Method and device for exploiting transmit diversity in time varying wireless communication systems
US20030156056A1 (en)2000-07-262003-08-21Perry Kenneth HNear-vertical incidence hf radar
WO2002008785A1 (en)2000-07-262002-01-31Alenia Marconi Systems LimitedNear-vertical incidence hf radar
US20050265273A1 (en)2000-08-022005-12-01Karabinis Peter DIntegrated or autonomous system and method of satellite-terrestrial frequency reuse using signal attenuation and/or blockage, dynamic assignment of frequencies and/or hysteresis
US20020041575A1 (en)2000-08-022002-04-11Mobile Satellite Ventures LlcCoordinated satellite-terrestrial frequency reuse
US6920192B1 (en)2000-08-032005-07-19Lucent Technologies Inc.Adaptive antenna array methods and apparatus for use in a multi-access wireless communication system
US6895258B1 (en)2000-08-142005-05-17Kathrein-Werke KgSpace division multiple access strategy for data service
US6330460B1 (en)2000-08-212001-12-11Metawave Communications CorporationSimultaneous forward link beam forming and learning method for mobile high rate data traffic
US6718184B1 (en)2000-09-282004-04-06Lucent Technologies Inc.Method and system for adaptive signal processing for an antenna array
US7242964B1 (en)2000-09-282007-07-10Lucent Technologies Inc.Shaping of EM field for transmission to multiple terminals
US7519011B2 (en)2000-09-292009-04-14Intel CorporationFrame structure for radio communications system
US6760599B1 (en)2000-09-292004-07-06Arraycomm, Inc.Method and apparatus for selecting a base station
US6795413B1 (en)2000-09-292004-09-21Arraycomm, Inc.Radio communications system in which traffic is transmitted on the broadcast channel
US7430197B1 (en)2000-09-292008-09-30Arraycomm, LlcRadio communications system with a shared broadcast channel
US6684366B1 (en)2000-09-292004-01-27Arraycomm, Inc.Multi-rate codec with puncture control
US7158493B1 (en)2000-09-292007-01-02Arraycomm, LlcRadio communications system with a minimal broadcast channel
US7085240B2 (en)2000-10-032006-08-01Kathrein-Werke KgDirected maximum ratio combining and scheduling of high rate transmission for data networks
US6718180B1 (en)2000-10-242004-04-06Telefonaktiebolaget Lm Ericsson (Publ)Power level convergence in a communications system
US6836673B1 (en)2000-12-222004-12-28Arraycomm, Inc.Mitigating ghost signal interference in adaptive array systems
WO2002054626A1 (en)2000-12-282002-07-11Nortel Networks LimitedMimo wireless communication system
US7978673B1 (en)2000-12-292011-07-12Intel CorporationChannel allocation based on random plus planned processes
US6888795B2 (en)2000-12-302005-05-03Durham Logistics LlcResource allocation in a circuit switched network
US20020136169A1 (en)2001-01-192002-09-26Struhsaker Paul F.Wireless access system for allocating and synchronizing uplink and downlink of TDD frames and method of operation
US7020490B2 (en)2001-01-302006-03-28Koninklijke Philips Electronics N.V.Radio communication system
US6697644B2 (en)2001-02-062004-02-24Kathrein-Werke KgWireless link quality using location based learning
US20020142723A1 (en)2001-02-092002-10-03Foschini Gerard J.Wireless communication system using multi-element antenna having a space-time architecture
US20020168017A1 (en)2001-02-212002-11-14Antoine BerthetMethod and system of iterative coding/decoding of digital data streams coded by spatio-temporal combinations, in multiple transmission and reception
US6847832B2 (en)2001-03-092005-01-25Kathrein-Werke KgSystem and method for providing phase matching with optimized beam widths
JP2002281551A (en)2001-03-162002-09-27Mitsubishi Electric Corp Data transmission device, transmission permission device, data transmission method, and transmission permission method
US7227855B1 (en)2001-03-202007-06-05Arraycomm LlcResource allocation in a wireless network
US7027415B1 (en)2001-03-202006-04-11Arraycomm, Inc.Dynamic allocation and de-allocation of multiple communication channels for bandwidth on-demand
US7406315B2 (en)2001-03-202008-07-29Arraycomm LlcMethod and apparatus for resource management in a wireless data communication system
US6996060B1 (en)2001-03-202006-02-07Arraycomm, Inc.Closing a communications stream between terminals of a communications system
US7339906B1 (en)2001-03-202008-03-04Arraycomm, LlcOpening a communications stream between a user terminal and a base station
US6771706B2 (en)2001-03-232004-08-03Qualcomm IncorporatedMethod and apparatus for utilizing channel state information in a wireless communication system
US20030043887A1 (en)2001-04-032003-03-06Hudson John E.Communication system and methods of estimating channel impulse responses therein
JP2002374224A (en)2001-04-092002-12-26Nippon Telegr & Teleph Corp <Ntt> OFDM signal transmission system, OFDM signal transmission device, and OFDM signal reception device
US20150270882A1 (en)2001-04-262015-09-24Genghiscomm Holdings, LLCCoordinated Multipoint Systems
US20160094318A1 (en)2001-04-262016-03-31Genghiscomm Holdings, LLCSingle-Carrier OFDMA
US6970682B2 (en)2001-04-272005-11-29Vivato, Inc.Wireless packet switched communication systems and networks using adaptively steered antenna arrays
US6611231B2 (en)2001-04-272003-08-26Vivato, Inc.Wireless packet switched communication systems and networks using adaptively steered antenna arrays
US7193991B2 (en)2001-05-012007-03-20Koninklijke Philips Electronics N.V.Radio communication arrangements
US20030003863A1 (en)2001-05-042003-01-02Jorn ThieleckeLink adaptation for MIMO transmission schemes
US6785341B2 (en)2001-05-112004-08-31Qualcomm IncorporatedMethod and apparatus for processing data in a multiple-input multiple-output (MIMO) communication system utilizing channel state information
WO2002093784A1 (en)2001-05-112002-11-21Qualcomm IncorporatedMethod and apparatus for processing data in a multiple-input multiple-output (mimo) communication system utilizing channel state information
US20050075110A1 (en)2001-05-152005-04-07Harri PostiMethod of channel allocation for a mobile terminal moving in a cellular communication network
US20020177447A1 (en)2001-05-162002-11-28Walton Jay RodMethod and apparatus for allocating uplink resources in a multiple-input multiple-output (MIMO) communication system
US7248879B1 (en)2001-05-162007-07-24Qualcomm IncorporatedMethod and apparatus for allocating downlink resources in a multiple-input multiple-output (MIMO) communication system
US7072413B2 (en)2001-05-172006-07-04Qualcomm, IncorporatedMethod and apparatus for processing data for transmission in a multi-channel communication system using selective channel inversion
WO2002099995A2 (en)2001-06-062002-12-12Qualcomm IncorporatedMethod and apparatus for antenna diversity in a wireless communication system
US20020193146A1 (en)2001-06-062002-12-19Mark WallaceMethod and apparatus for antenna diversity in a wireless communication system
US7031754B2 (en)2001-06-112006-04-18Kathrein-Werke KgShapable antenna beams for cellular networks
US7096040B1 (en)2001-06-112006-08-22Kathrein-Werke KgPassive shapable sectorization antenna gain determination
US20040170430A1 (en)2001-06-212004-09-02Alexei GorokhovMimo transmission system in a radio communications network
US7027523B2 (en)2001-06-222006-04-11Qualcomm IncorporatedMethod and apparatus for transmitting data in a time division duplexed (TDD) communication system
WO2003003604A1 (en)2001-06-292003-01-09Koninklijke Philips Electronics N.V.Radio communication system
JP2003018054A (en)2001-07-022003-01-17Ntt Docomo Inc Wireless communication method and system, and communication device
US20030012315A1 (en)2001-07-062003-01-16John FanSystem and method for multistage error correction coding wirelessly transmitted information in a multiple antennae communication system
US20030092456A1 (en)2001-07-262003-05-15Dent Paul WilkinsonCommunication system employing transmit macro-diversity
US20030036359A1 (en)2001-07-262003-02-20Dent Paul W.Mobile station loop-back signal processing
US7224942B2 (en)2001-07-262007-05-29Telefonaktiebolaget Lm Ericsson (Publ)Communications system employing non-polluting pilot codes
US7197282B2 (en)2001-07-262007-03-27Ericsson Inc.Mobile station loop-back signal processing
US7339908B2 (en)2001-07-312008-03-04Arraycomm, Llc.System and related methods to facilitate delivery of enhanced data services in a mobile wireless communications environment
US7363376B2 (en)2001-07-312008-04-22Arraycomm LlcMethod and apparatus for generating an identifier to facilitate delivery of enhanced data services in a mobile computing environment
JP2003051775A (en)2001-08-062003-02-21Matsushita Electric Ind Co Ltd W-CDMA / TDD base station and array antenna directivity control method
US7117014B1 (en)2001-08-172006-10-03Kathrein-Werke KgSystem and method for selecting optimized beam configuration
US20070243871A1 (en)2001-08-202007-10-18Qualcomm, IncorporatedMethod and system for a handoff in a broadcast communication system
US20030045297A1 (en)2001-08-242003-03-06Dent Paul W.Communication system employing channel estimation loop-back signals
US20030048753A1 (en)2001-08-302003-03-13Ahmad JalaliMethod and apparatus for multi-path elimination in a wireless communication system
US7209511B2 (en)2001-08-312007-04-24Ericsson Inc.Interference cancellation in a CDMA receiving system
US20030043929A1 (en)2001-09-062003-03-06Hemanth SampathTransmit signal preprocessing based on transmit antennae correlations for muliple antennae systems
US8086271B2 (en)2001-09-122011-12-27Ericsson Inc.Network architecture for mobile communication network with billing module for shared resources
US6956537B2 (en)2001-09-122005-10-18Kathrein-Werke KgCo-located antenna array for passive beam forming
JP2003134013A (en)2001-09-252003-05-09At & T CorpMulti-antenna/multi-receiver array diversity system
US7068704B1 (en)2001-09-262006-06-27Itt Manufacturing Enterpprises, Inc.Embedded chirp signal for position determination in cellular communication systems
US7027837B1 (en)2001-09-272006-04-11Arraycomm Llc.Antenna array for point-to-point microwave radio system
US7369841B1 (en)2001-09-282008-05-06Durham Logistics LlcWireless network infrastructure
US20030065779A1 (en)2001-09-282003-04-03Dale MalikMethods and systems for a communications and information resource manager
US7336626B1 (en)2001-09-282008-02-26Arraycomm, IncOperating time division duplex (TDD) wireless systems in paired spectrum (FDD) allocations
US20070082674A1 (en)2001-10-112007-04-12Pedersen Erling JAdaptive broadband platforms and methods of operation
US7502420B2 (en)2001-10-152009-03-10Qualcomm IncorporatedMethod and apparatus for determining power allocation in a MIMO communication system
US20030072379A1 (en)2001-10-152003-04-17Ketchum John W.Method and apparatus for determining power allocation in a MIMO communication system
US20030125040A1 (en)2001-11-062003-07-03Walton Jay R.Multiple-access multiple-input multiple-output (MIMO) communication system
US7181167B2 (en)2001-11-212007-02-20Texas Instruments IncorporatedHigh data rate closed loop MIMO scheme combining transmit diversity and data multiplexing
US7218689B2 (en)2001-11-292007-05-15Qualcomm IncorporatedMethod and apparatus for determining the log-likelihood ratio with precoding
US7154936B2 (en)2001-12-032006-12-26Qualcomm, IncorporatedIterative detection and decoding for a MIMO-OFDM system
US6760388B2 (en)2001-12-072004-07-06Qualcomm IncorporatedTime-domain transmit and receive processing with channel eigen-mode decomposition for MIMO systems
US20030114165A1 (en)2001-12-072003-06-19Mills Donald CharlesMethod for enhanced wireless signal distribution
JP2003179948A (en)2001-12-102003-06-27Furukawa Electric Co Ltd:The Monitoring system for CATV system
US20030114193A1 (en)2001-12-142003-06-19Samsung Electronics Co. Ltd.System and method for improving performance of an adaptive antenna array in a vehicular environment
US20030119556A1 (en)2001-12-242003-06-26Irfan KhanMethod of balancing backhaul delays for a series of daisy chained radio base stations
US20050085267A1 (en)2001-12-262005-04-21Paul LemsonModular base station antenna control system
US7139527B2 (en)2001-12-282006-11-21Hitachi, Ltd.Multi point wireless transmission repeater system and wireless equipments
US20030125026A1 (en)2001-12-282003-07-03Hitachi, Ltd.Radio terminal
US7849173B1 (en)2001-12-312010-12-07Christopher UhlikSystem for on-demand access to local area networks
US20030128658A1 (en)2002-01-082003-07-10Walton Jay RodResource allocation for MIMO-OFDM communication systems
US7142154B2 (en)2002-01-102006-11-28Roke Manor Research LimitedTime and frequency synchronizations of equipment at different locations
US20030220112A1 (en)2002-01-162003-11-27Engim, IncorporatedSystem and method for enabling the use of spatially distributed multichannel wireless access points/base stations
US20030139196A1 (en)2002-01-232003-07-24Irina MedvedevReallocation of excess power for full channel-state information (CSI) multiple-input, multiple-output (MIMO) systems
US20030147362A1 (en)2002-02-052003-08-07Interdigital Technology CorporationMethod and apparatus for synchronizing base stations
US20030148738A1 (en)2002-02-072003-08-07Lucent Technologies Inc.Method and apparatus for feedback error detection in a wireless communications systems
US7079809B1 (en)2002-02-072006-07-18Kathrein-Werke KgSystems and methods for providing improved wireless signal quality using diverse antenna beams
US20040097197A1 (en)2002-02-142004-05-20Carsten JunckerMobile station speed estimation
US6862271B2 (en)2002-02-262005-03-01Qualcomm IncorporatedMultiple-input, multiple-output (MIMO) systems with multiple transmission modes
US20030161282A1 (en)2002-02-262003-08-28Irina MedvedevMultiple-input, multiple-output (MIMO) systems with multiple transmission modes
US20040203347A1 (en)2002-03-122004-10-14Hung NguyenSelecting a set of antennas for use in a wireless communication system
US20110207416A1 (en)2002-03-222011-08-25Sanyo Electric Co., Ltd.Radio apparatus, and method and program for controlling spatial path
JP2003284128A (en)2002-03-222003-10-03Sanyo Electric Co Ltd Wireless device, spatial path control method, and spatial path control program
US7197084B2 (en)2002-03-272007-03-27Qualcomm IncorporatedPrecoding for a multipath channel in a MIMO system
WO2003084092A2 (en)2002-03-272003-10-09Qualcomm, IncorporatedPrecoding for a multipath channel in a mimo system
US6801580B2 (en)2002-04-092004-10-05Qualcomm, IncorporatedOrdered successive interference cancellation receiver processing for multipath channels
US20100315966A1 (en)2002-04-152010-12-16Aol Inc.Dynamically managing and reconfiguring wireless mesh networks
US7248645B2 (en)2002-04-302007-07-24Motorola, Inc.Wireless transmission using an adaptive transmit antenna array
WO2003094460A2 (en)2002-04-302003-11-13Ericsson Inc.Mobile station loop-back signal processing
EP1359683A1 (en)2002-04-302003-11-05Motorola, Inc.Wireless communication using multi-transmit multi-receive antenna arrays
US20030211843A1 (en)2002-05-132003-11-13Jun-Hyuk SongMethod for providing broadcast service in a CDMA mobile communication system
US20030214431A1 (en)2002-05-132003-11-20Hager James R.Methods and apparatus for determination of a filter center frequency
US20040009755A1 (en)2002-05-212004-01-15Shousei YoshidaAntenna transmission and reception system
US20050169396A1 (en)2002-05-272005-08-04Paul-Walter BaierMethod for transmitting information in a mimo radio communication system and radio communication system
US6794939B2 (en)2002-05-312004-09-21Lucent Technologies Inc.Signal predistortion using a combination of multiple predistortion techniques
US7269231B2 (en)2002-05-312007-09-11Lucent Technologies Inc.System and method for predistorting a signal using current and past signal samples
US20040043784A1 (en)2002-06-062004-03-04Stanislaw CzajaPower control of plural packet data control channels
US6791508B2 (en)2002-06-062004-09-14The Boeing CompanyWideband conical spiral antenna
WO2003107582A2 (en)2002-06-142003-12-24ComsisMethod for decoding linear space-time codes in a multiple-antenna wireless transmission system, and decoder therefor
US20060050804A1 (en)2002-06-142006-03-09Philippe LeclairMethod for decoding linear space-time codes in a multiple-antenna wireless transmission system and decoder therefor
US7167684B2 (en)2002-06-202007-01-23Qualcomm IncorporatedRate control for multi-channel communications systems
US20030235146A1 (en)2002-06-212003-12-25Yunnan WuBezout precoder for transmitter in MIMO communications network
US20040203987A1 (en)2002-07-292004-10-14Amit ButalaReducing interference with a multiple format channel in a communication system
US7751843B2 (en)2002-07-292010-07-06Qualcomm IncorporatedReducing interference with a multiple format channel in a communication system
US7072693B2 (en)2002-08-052006-07-04Calamp Corp.Wireless communications structures and methods utilizing frequency domain spatial processing
WO2004017586A1 (en)2002-08-152004-02-26Kabushiki Kaisha ToshibaChannel tracking and signal detection in mimo systems
EP1392029A1 (en)2002-08-152004-02-25Kabushiki Kaisha ToshibaChannel tracking and signal detection in MIMO systems
US7961809B2 (en)2002-08-222011-06-14ImecMethod and apparatus for multi-user multi-input multi-output transmission
US20040252632A1 (en)2002-08-222004-12-16Andre BourdouxMethod and apparatus for multi-user multi-input multi-output transmission
US7031336B2 (en)2002-08-262006-04-18Colubris Networks, Inc.Space-time-power scheduling for wireless networks
US20040042556A1 (en)2002-08-272004-03-04Irina MedvedevCoded MIMO systems with selective channel inversion applied per eigenmode
US20040051676A1 (en)2002-08-302004-03-18Travis Edward C.Signal cross polarization system and method
JP2004104206A (en)2002-09-052004-04-02Sony CorpSpace division multiplex access control method, wireless communication system, base station, and mobile station
US20060046658A1 (en)2002-09-052006-03-02Cruz Rene LScheduling methods for wireless networks
US20040131011A1 (en)2002-09-262004-07-08Kabushiki Kaisha ToshibaTransmission signals, method and apparatus
US7492743B2 (en)2002-09-302009-02-17Intel CorporationAssigning training sequences based on spatial channels in a wireless communications system
US7729316B2 (en)2002-09-302010-06-01Intel CorporationReceiving signals on a channel used for traffic and access in a communications system
US20040063450A1 (en)2002-09-302004-04-01Uhlik Christopher R.Transmitting signals on a channel used for traffic and access in a communications system
US7606192B2 (en)2002-09-302009-10-20Intel CorporationTransmitting signals on a channel used for traffic and access in a communications system
US7352774B2 (en)2002-09-302008-04-01Arraycomm, LlcMultiplexing different types of data sequences
US7412212B2 (en)2002-10-072008-08-12Nokia CorporationCommunication system
US7333540B2 (en)2002-10-152008-02-19Kabushiki Kaisha ToshibaEqualisation apparatus and methods
US7366519B2 (en)2002-10-212008-04-29Hong Kong Applied Science And Technology Research Institute Co., Ltd.Systems and methods for managing wireless communications using link space information
US20060056855A1 (en)2002-10-242006-03-16Masao NakagawaIlluminative light communication device
US20050148368A1 (en)2002-10-252005-07-07Stefan ScheinertSystem and method for automatically configuring and integrating a radio base station into an existing wireless cellular communication network with full bi-directional roaming and handover capability
US20100119001A1 (en)2002-10-252010-05-13Qualcomm IncorporatedMimo system with multiple spatial multiplexing modes
US20040082356A1 (en)2002-10-252004-04-29Walton J. RodneyMIMO WLAN system
US7986742B2 (en)2002-10-252011-07-26Qualcomm IncorporatedPilots for MIMO communication system
US20040179627A1 (en)2002-10-252004-09-16Ketchum John W.Pilots for MIMO communication systems
US20040136349A1 (en)2002-10-252004-07-15Walton J. RodneyMIMO system with multiple spatial multiplexing modes
RU2330381C2 (en)2002-10-252008-07-27Квэлкомм ИнкорпорейтедSystem with multiple inputs and multiple outputs (mimo) with multiple modes of space multiplexing
US20040152480A1 (en)2002-11-222004-08-05Telefonaktiebolaget Lm Ericsson (Publ)Method and apparatus for generating a neighbor cell list
US20050041751A1 (en)2002-12-162005-02-24France TelecomSignal transmission multiple antenna method and device
US7154960B2 (en)2002-12-312006-12-26Lucent Technologies Inc.Method of determining the capacity of each transmitter antenna in a multiple input/multiple output (MIMO) wireless system
CN1516370A (en)2003-01-032004-07-28华为技术有限公司 An Adaptive Space-Time Closed-Loop Transmit Diversity Method and System
US20040176097A1 (en)2003-02-062004-09-09Fiona WilsonAllocation of sub channels of MIMO channels of a wireless network
US7184492B2 (en)2003-02-102007-02-27Ericsson Inc.Using antenna arrays in multipath environment
WO2004073210A1 (en)2003-02-112004-08-26Ipwireless, Inc.Method, base station and mobile station for tdd operation in a communication system
EP1597842A1 (en)2003-02-112005-11-23IPWireless, Inc.Method, base station and mobile station for tdd operation in a communication system
WO2004075454A2 (en)2003-02-182004-09-02Extricom Ltd.Multi-channel wlan transceiver with antenna diversity
US7369876B2 (en)2003-03-042008-05-06Samsung Electronics Co., Ltd.Apparatus and method for estimating a velocity of a mobile station in a mobile communication system
US7197082B2 (en)2003-03-202007-03-27Lucent Technologies Inc.Linear transformation of symbols to at least partially compensate for correlation between antennas in space time block coded systems
US20040185909A1 (en)2003-03-202004-09-23Angeliki AlexiouLinear transformation of symbols to at least partially compensate for correlation between antennas in space time block coded systems
US7327795B2 (en)2003-03-312008-02-05Vecima Networks Inc.System and method for wireless communication systems
US20040190636A1 (en)2003-03-312004-09-30Oprea Alexandru M.System and method for wireless communication systems
US8081944B2 (en)2003-04-072011-12-20Bellow Bellows LlcWireless transmitter receiver
US20040209579A1 (en)2003-04-102004-10-21Chandra VaidyanathanSystem and method for transmit weight computation for vector beamforming radio communication
US20080107135A1 (en)2003-04-172008-05-08WavecomRadio Data Transmission Method Employing Several Different Pilot Patterns, Corresponding Base Station, Mobile, System and Reception Method
WO2004095719A2 (en)2003-04-222004-11-04Interdigital Technology CorporationMethod and system for integrating resource allocation between time division duplex and frequency division duplex in wireless communication systems
US20060199584A1 (en)2003-04-242006-09-07Telefonaktiebolaget Lm Ericsson (Publ)Distributed radio units
US7120440B2 (en)2003-05-232006-10-10Samsung Electronics Co., Ltd.Velocity estimation apparatus and method using level crossing rate
US20110017700A1 (en)2003-05-232011-01-27Patcheak Terry DHot-fill container
CN1820424A (en)2003-06-022006-08-16高通股份有限公司 Receiving device with hybrid equalizer and RAKE receiver and corresponding receiving method
US20050024231A1 (en)2003-06-132005-02-03Baker Hughes IncorporatedApparatus and methods for self-powered communication and sensor network
US7499548B2 (en)2003-06-242009-03-03Intel CorporationTerminal authentication in a wireless network
US20050003865A1 (en)2003-07-032005-01-06Roc LastingerMethod and apparatus for high throughput multiple radio sectorized wireless cell
US9179495B1 (en)2003-07-082015-11-03Hewlett-Packard Development Company, L.P.Implementing “all wireless” network over WiFi equipment using “scheduled TDMA”
JP2005039822A (en)2003-07-142005-02-10Lucent Technol IncMethod and apparatus for adaptive and online assignment in hierarchical overlay network
US7242724B2 (en)2003-07-162007-07-10Lucent Technologies Inc.Method and apparatus for transmitting signals in a multi-antenna mobile communications system that compensates for channel variations
US20050020237A1 (en)2003-07-162005-01-27Angeliki AlexiouMethod and apparatus for transmitting signals in a multi-antenna mobile communications system that compensates for channel variations
US7558575B2 (en)2003-07-242009-07-07Motorola Inc.Method and apparatus for wireless communication in a high velocity environment
US7313403B2 (en)2003-08-062007-12-25Hong Kong Applied Science And Technology Research Institute Co., Ltd.Location positioning in wireless networks
US20050031047A1 (en)2003-08-082005-02-10Maltsev Alexander A.Adaptive multicarrier wireless communication system, apparatus and associated methods
US7394858B2 (en)2003-08-082008-07-01Intel CorporationSystems and methods for adaptive bit loading in a multiple antenna orthogonal frequency division multiplexed communication system
US20050043031A1 (en)2003-08-182005-02-24Samsung Electronics Co., Ltd.Apparatus and method for scheduling resource in a multiuser MIMO radio communication system
US20050042988A1 (en)2003-08-182005-02-24AlcatelCombined open and closed loop transmission diversity system
US20050041750A1 (en)2003-08-192005-02-24Kin Nang LauSystem and method for multi-access MIMO channels with feedback capacity constraint
US20050047515A1 (en)2003-08-272005-03-03Walton J. RodneyFrequency-independent spatial processing for wideband MISO and MIMO systems
US20050058217A1 (en)2003-09-152005-03-17Sumeet SandhuMulticarrier transmitter, multicarrier receiver, and methods for communicating multiple spatial signal streams
US20080232394A1 (en)2003-09-302008-09-25Werner KozekMethod For Regulating the Transmission Parameters of Broadband Transmission Channels Assembled to Form a Group
US7471736B2 (en)2003-09-302008-12-30Alcatel-Lucent Usa Inc.Frequency based modulator compensation
US20050096058A1 (en)2003-10-292005-05-05Robert WarnerMethod and system for an adaptive wireless communication system optimized for economic benefit
US7616698B2 (en)2003-11-042009-11-10Atheros Communications, Inc.Multiple-input multiple output system and method
US20050101259A1 (en)2003-11-062005-05-12Wen TongCommunication channel optimization systems and methods in multi-user communication systems
WO2005046081A1 (en)2003-11-062005-05-19Nortel Networks LimitedMethod to determine precoding-weights based on channel state information in a mimo communication system
US20050101352A1 (en)2003-11-102005-05-12Telefonaktiebolaget Lm Ericsson (Publ),Method and apparatus for a multi-beam antenna system
JP2005159448A (en)2003-11-202005-06-16National Institute Of Information & Communication Technology Broadband wireless communication system
US20050111406A1 (en)2003-11-212005-05-26Nokia CorporationMulti-user multicarrier allocation in a communication system
US20050111599A1 (en)2003-11-212005-05-26Walton J. R.Multi-antenna transmission for spatial division multiple access
US7075485B2 (en)2003-11-242006-07-11Hong Kong Applied Science And Technology Research Institute Co., Ltd.Low cost multi-beam, multi-band and multi-diversity antenna systems and methods for wireless communications
US7366202B2 (en)2003-12-082008-04-29Colubris Networks, Inc.System and method for interference mitigation for wireless communication
US7948444B2 (en)2003-12-222011-05-24Telefonaktiebolaget Lm Ericsson (Publ)Method and system of communications for high data rate transmission
US7352819B2 (en)2003-12-242008-04-01Intel CorporationMultiantenna communications apparatus, methods, and system
US7747250B2 (en)2003-12-302010-06-29Telefonaktiebolaget Lm Ericsson (Publ)Calibration method to achieve reciprocity of bidirectional communication channels
US7450489B2 (en)2003-12-302008-11-11Intel CorporationMultiple-antenna communication systems and methods for communicating in wireless local area networks that include single-antenna communication devices
WO2005064871A1 (en)2003-12-302005-07-14Telefonaktiebolaget Lm Ericsson (Publ)Calibration method to achieve reciprocity of bidirectional communication channels
US7006043B1 (en)2004-01-162006-02-28The United States Of America, As Represented By The Secretary Of The ArmyWideband circularly polarized single layer compact microstrip antenna
US20050174977A1 (en)2004-02-062005-08-11M-Stack LimitedApparatus and method for operating a communications device in a mobile communications network
US20050186991A1 (en)2004-02-102005-08-25Bateman Blaine R.Wireless access point with enhanced coverage
US7801490B1 (en)2004-03-172010-09-21Hewlett-Packard CompanyInterference based scheduling using cognitive radios
US20050232135A1 (en)2004-03-312005-10-20Manabu MukaiRadio communication system, terminal apparatus and base station apparatus
US20110002371A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for adjusting DIDO interference cancellation based on signal strength measurements
US10277290B2 (en)2004-04-022019-04-30Rearden, LlcSystems and methods to exploit areas of coherence in wireless systems
US20110044193A1 (en)2004-04-022011-02-24Antonio ForenzaSystems and methods to coordinate transmissions in distributed wireless systems via user clustering
US20120314570A1 (en)2004-04-022012-12-13Antonio ForenzaSystem and methods to compensate for doppler effects in distributed-input distributed-output wireless systems
US10349417B2 (en)2004-04-022019-07-09Rearden, LlcSystem and methods to compensate for doppler effects in multi-user (MU) multiple antenna systems (MAS)
US20110003607A1 (en)2004-04-022011-01-06Antonio ForenzaInterference management, handoff, power control and link adaptation in distributed-input distributed-output (DIDO) communication systems
US20110002411A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for link adaptation in DIDO multicarrier systems
US10985811B2 (en)2004-04-022021-04-20Rearden, LlcSystem and method for distributed antenna wireless communications
US20110002410A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for power control and antenna grouping in a distributed-input-distributed-output (DIDO) network
US20110003608A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for managing handoff of a client between different distributed-input-distributed-output (DIDO) networks based on detected velocity of the client
US8170081B2 (en)2004-04-022012-05-01Rearden, LLC.System and method for adjusting DIDO interference cancellation based on signal strength measurements
US20110003606A1 (en)2004-04-022011-01-06Antonio ForenzaSystem and method for managing inter-cluster handoff of clients which traverse multiple DIDO clusters
US8971380B2 (en)2004-04-022015-03-03Rearden, LlcSystem and method for adjusting DIDO interference cancellation based on signal strength measurements
US8654815B1 (en)2004-04-022014-02-18Rearden, LlcSystem and method for distributed antenna wireless communications
US20120093078A1 (en)2004-04-022012-04-19Perlman Stephen GSystem and methods for planned evolution and obsolescence of multiuser spectrum
US20120087430A1 (en)2004-04-022012-04-12Antonio ForenzaSystems and methods to exploit areas of coherence in wireless systems
US20140133435A1 (en)2004-04-022014-05-15Antonio ForenzaSystem and method for distributed antenna wireless communications
US20100316163A1 (en)2004-04-022010-12-16Antonio ForenzaSystem and method for DIDO precoding interpolation in multicarrier systems
US7486931B2 (en)2004-04-142009-02-03Samsung Electronics Co., Ltd.System and method for reselecting antennas in a cellular mobile communication system using multiple antennas
US20080214185A1 (en)2004-04-142008-09-04Samsung Electronics Co., Ltd.System and method for reselecting antennas in a cellular mobile communication system using multiple antennas
US20050259627A1 (en)2004-05-192005-11-24Jian SongMethod and system for providing multi-input-multi-output (MIMO) downlink transmission
US20050271009A1 (en)2004-05-282005-12-08Ntt Docomo, IncFrequency selection apparatus, a mobile communications system, and a multi-band frequency resource management method
CN1703113A (en)2004-05-282005-11-30株式会社Ntt都科摩A frequency selection apparatus, a mobile communications system, and a multi-band frequency resource management method
US7689639B2 (en)2004-06-042010-03-30Telefonaktiebolaget Lm Ericsson (Publ)Complex logarithmic ALU
US20080267142A1 (en)2004-06-182008-10-30Stellaris Ltd.Distributed Antenna Wlan Access-Point System and Method
US20080192683A1 (en)2004-06-232008-08-14Jin-Kyu HanApparatus and Method for Transmitting and Receiving Packet Data Using Multiple Antennas in a Wireless Communication System
US20050287962A1 (en)2004-06-252005-12-29Mehta Neelesh BRF-based antenna selection in MIMO systems
US20060032979A1 (en)2004-06-302006-02-16The Boeing CompanyAircraft interior configuration detection system
US7684753B2 (en)2004-07-212010-03-23Nokia CorporationMethod and device for transmission parameter selection in mobile communications
US7418053B2 (en)2004-07-302008-08-26Rearden, LlcSystem and method for distributed input-distributed output wireless communications
US20080118004A1 (en)2004-07-302008-05-22Antonio ForenzaSystem and method for distributed input-distributed output wireless communications
JP2006081162A (en)2004-07-302006-03-23Rearden IncSystem and method for input-distributed, output-distributed type wireless communications
CA2856772A1 (en)2004-07-302006-01-30Rearden, LlcSystem and method for distributed input distributed output wireless communications
US7633994B2 (en)2004-07-302009-12-15Rearden, LLC.System and method for distributed input-distributed output wireless communications
US20080080631A1 (en)2004-07-302008-04-03Antonio ForenzaSystem and method for ditributed input-distributed output wireless communications
US7599420B2 (en)2004-07-302009-10-06Rearden, LlcSystem and method for distributed input distributed output wireless communications
US20060023803A1 (en)2004-07-302006-02-02Perlman Stephen GSystem and method for distributed input-distributed output wireless communications
US7636381B2 (en)2004-07-302009-12-22Rearden, LlcSystem and method for distributed input-distributed output wireless communications
US20100172309A1 (en)2004-07-302010-07-08Antonio ForenzaSystem and method for distributed input distributed output wireless communications
CN1734972A (en)2004-07-302006-02-15瑞登有限公司 System and method for distributed input distributed output wireless communication
US20080130790A1 (en)2004-07-302008-06-05Antionio ForenzaSystem and method for distributed input distributed output wireless communications
US20070025464A1 (en)2004-07-302007-02-01Perlman Stephen GSystem and method for spatial-multiplexed tropospheric scatter communications
US7366245B2 (en)2004-09-102008-04-29Intel CorporationCalibration in MIMO systems
US7599443B2 (en)2004-09-132009-10-06Nokia CorporationMethod and apparatus to balance maximum information rate with quality of service in a MIMO system
US20060062180A1 (en)2004-09-212006-03-23Sayeedi Shahab MMethod and apparatus to facilitate inter-AN HRPD hard handoff
CN1898973A (en)2004-09-212007-01-17摩托罗拉公司Method and apparatus to facilitate inter-an hrpd hard handoff
US20070263736A1 (en)2004-09-282007-11-15Matsushita Electric Industrial Co., Ltd.Multicarrier Communication Apparatus and Multicarrier Communication Method
US20060098754A1 (en)2004-10-212006-05-11Samsung Electronics Co., Ltd.Beam and power allocation method for MIMO communication system
WO2006049417A1 (en)2004-11-012006-05-11Lg Electronics Inc.A method of transmitting a precoding matrix in a multi-input multi-output (mimo) system
US20060098568A1 (en)2004-11-092006-05-11Samsung Electronics Co., Ltd.Method for supporting various multi-antenna schemes in BWA system using multiple antennas
US8797970B2 (en)2004-12-072014-08-05Adaptix, Inc.Method and system for switching antenna and channel assignments in broadband wireless networks
WO2006063138A2 (en)2004-12-072006-06-15Adaptix, Inc.Cooperative mimo in multicell wireless networks
US7548752B2 (en)2004-12-222009-06-16Qualcomm IncorporatedFeedback to support restrictive reuse
US7719993B2 (en)2004-12-302010-05-18Intel CorporationDownlink transmit beamforming
US20060146755A1 (en)2004-12-302006-07-06Ntt Docomo Inc.MIMO communication system and method capable of adaptive user scheduling
US7688789B2 (en)2004-12-302010-03-30Ntt Docomo, Inc.MIMO communication system and method capable of adaptive user scheduling
US20060209979A1 (en)2005-01-072006-09-21Kabushiki Kaisha ToshibaFrequency offset tracking
US20060159160A1 (en)2005-01-142006-07-20Qualcomm IncorporatedOptimal weights for MMSE space-time equalizer of multicode CDMA system
US20060159187A1 (en)2005-01-142006-07-20Haifeng WangSystem and method for utilizing different known guard intervals in single/multiple carrier communication systems
WO2006078019A1 (en)2005-01-242006-07-27Ntt Docomo, Inc.Mobile communication terminal and method for controlling activation of multi-path interference removing apparatus
US20060165120A1 (en)2005-01-272006-07-27Karabinis Peter DSatellite/terrestrial wireless communications systems and methods using disparate channel separation codes
JP2006245871A (en)2005-03-022006-09-14Hitachi Ltd Wireless data communication system and wireless data communication method
US20060198461A1 (en)2005-03-022006-09-07Shigenori HayaseWireless data communication system and wireless data communication method
US20060203708A1 (en)2005-03-112006-09-14Hemanth SampathSystems and methods for beamforming feedback in multi antenna communication systems
JP2009273167A (en)2005-03-312009-11-19Ntt Docomo IncTransmitter, receiver, mobile telecommunication system and transmission control method
WO2006110737A2 (en)2005-04-072006-10-19Interdigital Technology CorporationMethod and apparatus for antenna mapping selection in mimo-ofdm wireless networks
CN102185641A (en)2005-04-072011-09-14美商内数位科技公司Method and apparatus for antenna mapping selection in MIMO-OFDM wireless networks
WO2006113872A1 (en)2005-04-192006-10-26Qualcomm IncorporatedChannel quality reporting for adaptive sectorization
US20110076954A1 (en)2005-05-232011-03-31Cisco Technology, Inc.Method and system for interference reduction
US20060270359A1 (en)2005-05-242006-11-30Magnolia Broadband Inc.Determining a phase adjustment in accordance with power trends
US7451839B2 (en)2005-05-242008-11-18Rearden, LlcSystem and method for powering a vehicle using radio frequency generators
US7609751B1 (en)2005-05-242009-10-27L-3 Communications CorporationMethod and apparatus to initiate communications between an unknown node and an existing secure network
US20060281421A1 (en)2005-06-142006-12-14Interdigital Technology CorporationMethod and apparatus for generating feedback information for transmit power control in a multiple-input multiple-output wireless communication system
CN101238648A (en)2005-06-142008-08-06高通股份有限公司Transmitting spatial diversity for cellular single frequency networks
CN101536320A (en)2005-06-162009-09-16高通股份有限公司Negotiated channel information reporting in a wireless communication system
US20060287743A1 (en)2005-06-162006-12-21Hemanth SampathNegotiated channel information reporting in a wireless communication system
US20060292990A1 (en)2005-06-212006-12-28Karabinis Peter DCommunications systems including adaptive antenna systems and methods for inter-system and intra-system interference reduction
US20070058590A1 (en)2005-06-242007-03-15Samsung Electronics Co., Ltd.User selection method in a zero-forcing beamforming algorithm
US20070004337A1 (en)2005-06-292007-01-04Ashim BiswasMulticarrier receiver and method for carrier frequency offset correction and channel estimation for receipt of simultaneous transmissions over a multi-user uplink
US20070015526A1 (en)2005-07-132007-01-18Hansen Christopher JChannel reciprocity matrix determination in a wireless MIMO communication system
US20130038766A1 (en)2005-07-202013-02-14Stephen G. PerlmanApparatus and method for capturing still images and video using coded lens imaging techniques
WO2007024913A1 (en)2005-08-222007-03-01Qualcomm IncorporatedMethod and apparatus for selection of virtual antennas
JP2007060106A (en)2005-08-232007-03-08Tokyo Institute Of Technology IQ imbalance compensation method in MIMO-OFDM communication system
WO2007027825A2 (en)2005-08-302007-03-08Qualcomm IncorporatedTransmission mode selection, precoding and sdma support
US20070054633A1 (en)2005-09-082007-03-08Nokia CorporationData transmission scheme in wireless communication system
US20070064823A1 (en)2005-09-162007-03-22Samsung Electronics Co., Ltd.Apparatus and method for calibrating channel in radio communication system using multiple antennas
US20070066331A1 (en)2005-09-212007-03-22Jun ZhengMethod and system for a double search user group selection scheme with range reduction in TDD multiuser MIMO downlink transmission
US7630337B2 (en)2005-09-212009-12-08Broadcom CorporationMethod and system for an improved user group selection scheme with finite-rate channel state information feedback for FDD multiuser MIMO downlink transmission
CN101310454A (en)2005-09-232008-11-19高通股份有限公司Method and apparatus for pilot communication in a multi-antenna wireless communication system
US20070093273A1 (en)2005-10-082007-04-26AlcatelDistributed base station, communication system, and signal transmission method thereof
US20070099665A1 (en)2005-10-102007-05-03Samsung Electronics Co., Ltd.Apparatus and method for improving reception performance in a smart antenna system
US20070086400A1 (en)2005-10-142007-04-19Masaaki ShidaRadio communication device
WO2007046621A1 (en)2005-10-172007-04-26Samsung Electronics Co., Ltd.Apparatus and method for transmitting/receiving data in multi-user multi-antenna communication system
JP2007116686A (en)2005-10-182007-05-10Alcatel Distributed base station, communication system, and signal transmission method for the base station and system
US20070093274A1 (en)2005-10-242007-04-26Hamid JafarkhaniApparatus and method for a system architecture for multiple antenna wireless communication systems using round robin channel estimation and transmit beam forming algorithms
US20130242956A1 (en)2005-11-012013-09-19At&T Intellectual Property Ii, L.P.Non-interference technique for spatially aware mobile ad hoc networking
US20080261587A1 (en)2005-11-162008-10-23Telefonaktiebolaget L M Ericsson (Publ)Expert System
US20070132653A1 (en)2005-12-082007-06-14University Of South FloridaZero-Order Energy Smart Antenna and Repeater
US20070135125A1 (en)2005-12-102007-06-14Samsung Electronics Co., Ltd.Apparatus and method for hard handover in a wireless communication system
US20090316807A1 (en)2006-01-132009-12-24Sang Gook KimMethod and apparatus for achieving transmit diversity and spatial multiplexing using antenna selection based on feedback information
US20070183362A1 (en)2006-02-062007-08-09Motorola, Inc.Method and apparatus for performing spatial-division multiple access
US20070211747A1 (en)2006-02-212007-09-13Samsung Electronics Co., Ltd.Adaptive channel prediction apparatus and method for performing uplink pre-equalization depending on downlink channel variation in OFDM/TDD mobile communication system
US7272294B2 (en)2006-02-212007-09-18Fujitsu LimitedWireless communication system and receiving device
CN101031129A (en)2006-03-012007-09-05中兴通讯股份有限公司Apparatus and method for inhibiting interference between wireless systems
US20070206504A1 (en)*2006-03-012007-09-06Interdigital Technology CorporationMethod and apparatus for calibration and channel state feedback to support transmit beamforming in a mimo system
US7729433B2 (en)2006-03-072010-06-01Motorola, Inc.Method and apparatus for hybrid CDM OFDMA wireless transmission
US20070242782A1 (en)2006-03-132007-10-18Samsung Electronics Co., Ltd.Channel estimation apparatus and method for interference cancellation in mobile communication system
CN101405965A (en)2006-03-202009-04-08英特尔公司Downlink resource allocation and mapping
US20070220151A1 (en)2006-03-202007-09-20Qinghua LiDownlink resource allocation and mapping
US8041362B2 (en)2006-03-202011-10-18Intel CorporationDownlink resource allocation and mapping
US20080239938A1 (en)2006-03-302008-10-02Beceem Communications Inc.Method and system for uplink coordinated reception in orthogonal frequency division multiple access systems
US8612619B2 (en)2006-03-312013-12-17Alcatel LucentMethod and apparatus for improved multicast streaming in wireless networks
WO2007114654A1 (en)2006-04-062007-10-11Lg Electronics Inc.Method for transmitting channel state information in multiple antenna system
US20070253508A1 (en)2006-04-192007-11-01Samsung Electronics Co., Ltd.Apparatus and method for selecting effective channel in a multi-user MIMO system
US20070249380A1 (en)2006-04-192007-10-25Motorola, Inc.Apparatus and method for broadcasting data
US8260198B2 (en)2006-04-272012-09-04Sony CorporationWireless communication system, wireless communication apparatus, and wireless communication method
US7751368B2 (en)2006-05-012010-07-06Intel CorporationProviding CQI feedback to a transmitter station in a closed-loop MIMO system
US20070254602A1 (en)2006-05-012007-11-01Qinghua LiChannel feedback using channel state predictions based also on delays
US20070258531A1 (en)2006-05-042007-11-08Winbond Electronics CorporationAdaptive Quantization Method and Apparatus For An OFDM Receiver
US7756222B2 (en)2006-05-042010-07-13Integrated System Solution CorporationAdaptive quantization method and apparatus for an OFDM receiver
US7633944B1 (en)2006-05-122009-12-15Juniper Networks, Inc.Managing timeouts for dynamic flow capture and monitoring of packet flows
US20070280116A1 (en)2006-06-052007-12-06Hong Kong University Of Science And TechnologyAdaptive multi-user mimo non-cooperative threshold-based wireless communication system using limited channel feedback
JP2009540692A (en)2006-06-092009-11-19インテル コーポレイション Determination of Doppler frequency of mobile radio equipment
US20070286298A1 (en)2006-06-092007-12-13Choi Yang-SeokDoppler frequency determination for mobile wireless devices
US20080125051A1 (en)2006-06-302008-05-29Samsung Electronics Co., Ltd.Apparatus and method for transmitting/receiving data in a closed-loop multi-antenna system
US20100128630A1 (en)2006-07-132010-05-27Designart Networks LtdAccess point planning mechanism
US20080013644A1 (en)2006-07-142008-01-17Klaus HuglData processing method, data transmission method, data reception method, apparatus, codebook, computer program product, computer program distribution medium
JP2008035287A (en)2006-07-282008-02-14Kyocera Corp Wireless communication method, wireless base station, wireless communication terminal, and base station control device
US20080260054A1 (en)2006-08-172008-10-23Interdigital Technology CorporationMethod and apparatus for reducing a peak-to-average power ratio in a multiple-input multiple-output system
US20080132281A1 (en)2006-08-212008-06-05Byoung-Hoon KimApproach to a unified su-mimo/mu-mimo operation
US20080051150A1 (en)2006-08-232008-02-28Fujitsu LimitedWireless communication apparatus and wireless communication method
US20080292011A1 (en)2006-09-052008-11-27Huawei Technologies Co., Ltd.Method and system for implementing transmitting diversity and receiving diversity
US20080089396A1 (en)2006-09-182008-04-17Hongyuan ZhangCalibration Correction for Implicit Beamforming in a Wireless MIMO Communication System
CN101542938A (en)2006-09-182009-09-23马维尔国际贸易有限公司Calibration correction for implicit beamforming in wireless MIMO communication systems
US20080080635A1 (en)2006-10-022008-04-03Nokia CorporationAdvanced feedback signaling for multi-antenna transmission systems
US20090135944A1 (en)2006-10-232009-05-28Dyer Justin SCooperative-MIMO Communications
US20080102881A1 (en)2006-10-252008-05-01Samsung Electronics Co., Ltd.Method and apparatus for adaptively allocating transmission power for beam-forming combined with OSTBCs in a distributed wireless communication system
US20090285156A1 (en)2006-10-262009-11-19Huawei Technologies Co., Ltd.Method, apparatus and system for scheduling sdma codebooks
TW201220741A (en)2006-10-312012-05-16Qualcomm IncUnified design and centralized scheduling for dynamic SIMO, SU-MIMO and MU-MIMO operation for RL transmissions
US20100296591A1 (en)2006-10-312010-11-25Hao XuUnified design and centralized scheduling for dynamic simo, su-mimo and mu-mimo operation for rl transmissions
US8675768B2 (en)2006-10-312014-03-18Qualcomm IncorporatedUnified design and centralized scheduling for dynamic SIMO, SU-MIMO and MU-MIMO operation for RL transmissions
US20100098030A1 (en)2006-11-012010-04-22Yi-Pin Eric WangMethod and Arrangement for SINR Feedback in MIMO Based Wireless Communication Systems
US8126510B1 (en)2006-11-152012-02-28Nextel Communications Inc.Public safety communications network architecture
US20080117961A1 (en)2006-11-222008-05-22Samsung Electronics Co.; LtdMethod and apparatus of adaptively allocating transmission power for beamforming combined with orthogonal space-time block codes based on symbol error rate in distributed wireless communication system
US20100068999A1 (en)2006-11-272010-03-18Joakim BangsNear field rf communicators and near field rf communications-enabled devices
US20080165866A1 (en)2007-01-082008-07-10Koon Hoo TeoCooperative Communication and Shared Handoff among Base, Relay, and Mobile Stations in OFDMA Cellular Networks
US20100260115A1 (en)2007-01-122010-10-14Nokia CorporationMethod and apparatus for providing automatic control channel mapping
US20080181285A1 (en)2007-01-292008-07-31Samsung Electronics Co., Ltd.Precoder and precoding method in a multi-antenna system
US20100316154A1 (en)2007-02-072010-12-16Sung Ho ParkMethod for performing virtual multiple antenna transmission in uplink using feedback information and mobile terminal supporting the same
US20080192697A1 (en)2007-02-122008-08-14Interdigital Technology CorporationMethod and apparatus for supporting handover from lte/eutran to gprs/geran
US20080200211A1 (en)2007-02-212008-08-21Hwang Seong-TaekSystem and method for forming cell by using distributed antennas in wimax mobile communication system
US20080205538A1 (en)2007-02-222008-08-28Shuangfeng HanMethod for ser approximation for ostbc in distributed wire communication systems
KR20080081698A (en)2007-03-062008-09-10삼성전자주식회사 Multi-user scheduling method and apparatus in communication system
US20080227422A1 (en)*2007-03-142008-09-18Samsung Electronics Co. Ltd.Apparatus and method for interference cancellation in multi-antenna system
US20080233902A1 (en)2007-03-212008-09-25Interdigital Technology CorporationMethod and apparatus for communicating precoding or beamforming information to users in mimo wireless communication systems
US8451764B2 (en)2007-03-212013-05-28Alcatel LucentMethod and apparatus for supporting MBMS in system architecture evolution
KR20090132625A (en)2007-03-232009-12-30콸콤 인코포레이티드 Backhaul Communication for Interference Management
US20080268833A1 (en)2007-03-302008-10-30Leping HuangSystem and Method for Self-Optimization of Interference Coordination in Communication Systems
WO2008119216A1 (en)2007-04-032008-10-09Zte CorporationA common frequency interference suppression method in a wireless communication system
US8787469B2 (en)2007-04-042014-07-22Samsung Electronics Co., Ltd.Method for codebook design and beamforming vector selection in per-user unitary rate control (PU2RC) system
US20090010204A1 (en)2007-04-132009-01-08Hart Communication FoundationSupport for Network Management and Device Communications in a Wireless Network
CN101291503A (en)2007-04-172008-10-22展讯通信(上海)有限公司Calibrating method and apparatus for radio frequency circuit of time division duplexing MIMO multi-antenna communicating system
US20100183099A1 (en)2007-04-242010-07-22Kyocera CorporationReception Control Method and Wireless Communication Apparatus
US9252858B2 (en)2007-05-152016-02-02Lattice Semiconductor CorporationMulti-antenna transmitter for multi-tone signaling
US7864663B2 (en)2007-05-252011-01-04Telefonaktiebolaget Lm Ericsson (Publ)Orthogonal spread-spectrum waveform generation with non-contiguous spectral occupancy for use in CDMA communications
US8482462B2 (en)2007-05-252013-07-09Rambus Inc.Multi-antenna beam-forming system for transmitting constant envelope signals decomposed from a variable envelope signal
CN101682432A (en)2007-05-292010-03-24三菱电机株式会社Calibration method, communication system, frequency control method, and communication apparatus
US20100150013A1 (en)2007-05-292010-06-17Mitsubishi Electric CorporationCalibration method, communication system, frequency control method, and communication device
US20110211485A1 (en)2007-06-142011-09-01Kai XuMethod and system for operating a multi-user multiple-input multiple output (mu-mimo) wireless communications system
US20100189191A1 (en)2007-06-192010-07-29Ntt Docomo, Inc.Transmitter and transmission method
US20080317014A1 (en)2007-06-212008-12-25Elektrobit Wireless Communications Ltd.Method for optimizing spatial modulation in a wireless link and network element thereto
US20120258657A1 (en)2007-06-262012-10-11Lgc Wireless, LlcDistributed antenna communications system
US20090023467A1 (en)2007-07-182009-01-22Kaibin HuangMethod and apparatus for performing space division multiple access in a wireless communication network
US20090034636A1 (en)2007-08-032009-02-05Kotecha Jayesh HFeedback scheduling to reduce feedback rates in MIMO systems
US20090041151A1 (en)2007-08-072009-02-12Farooq KhanPilot boosting and traffic to pilot ratio estimation in a wireless communication system
US20090041148A1 (en)2007-08-102009-02-12Guangjie LiOpen loop mu-mimo
US20090046800A1 (en)2007-08-132009-02-19Qualcomm IncorporatedFeedback and rate adaptation for mimo transmission in a time division duplexed (tdd) communication system
US20140241209A1 (en)2007-08-162014-08-28Nokia Solutions And Networks OyIntegration apparatus, communication network and method for integrating a network node into a communication network
US20090046678A1 (en)2007-08-172009-02-19Industry-Academic Cooperation Foundation Of Kyung Hee UniversityMethod for predicting the mobility in mobile ad hoc networks
US8989155B2 (en)2007-08-202015-03-24Rearden, LlcSystems and methods for wireless backhaul in distributed-input distributed-output wireless systems
RU2010110620A (en)2007-08-202011-09-27Риарден, Ллк (Us) SYSTEM AND METHOD OF WIRELESS COMMUNICATION WITH DISTRIBUTED INPUTS AND DISTRIBUTED OUTPUTS
CN101861718A (en)2007-08-202010-10-13瑞登有限责任公司 System and method for distributed input distributed output wireless communication
CN103117975A (en)2007-08-202013-05-22瑞登有限责任公司System of compensating MU-MAS communications and dynamically adapting communication characteristics of MU-MAS communication system
WO2009026400A1 (en)2007-08-202009-02-26Onlive, Inc.System and method for distributed input distributed output wireless communications
US20130039168A1 (en)2007-08-202013-02-14Antonio ForenzaSystems and methods for wireless backhaul in distributed-input distributed-output wireless systems
US9685997B2 (en)2007-08-202017-06-20Rearden, LlcSystems and methods to enhance spatial diversity in distributed-input distributed-output wireless systems
JP2010537577A (en)2007-08-202010-12-02リアデン リミテッド ライアビリティ カンパニー System and method for distributed input distributed output wireless communication
KR20100057071A (en)2007-08-202010-05-28리어덴 엘엘씨System and method for distributed input distributed output wireless communications
US20090067402A1 (en)2007-08-202009-03-12Antonio ForenzaSystem and Method For Distributed Input-Distributed Output Wireless Communications
US20120314649A1 (en)2007-08-202012-12-13Antonio ForenzaSystems and methods to enhance spatial diversity in distributed-input distributed output-wireless systems
US20110090005A1 (en)2007-08-312011-04-21Oki Semiconductor Co., Ltd.Semiconductor device, semiconductor element, and substrate
US20090060013A1 (en)2007-08-312009-03-05Ashikhmin Alexei EOptimizing precoder settings using average sinr reports for groups of tones
US20090069054A1 (en)2007-09-062009-03-12Zangi Kambiz CMethod and Apparatus for Linearly Precoding Downlink Transmissions to Reduce Temporal Variations in Interference
US20090075686A1 (en)2007-09-192009-03-19Gomadam Krishna SMethod and apparatus for wideband transmission based on multi-user mimo and two-way training
US20090086855A1 (en)2007-09-282009-04-02Cisco Technology, Inc.Link adaptation based on generic cinr measurement according to log-likelihood ratio distribution
US20090086648A1 (en)2007-10-022009-04-02Nortel Networks LimitedRank Adaptation for an Open Loop Multi-Antenna Mode of Wireless Communication
US20090097448A1 (en)2007-10-122009-04-16Lucent Technologies Inc.Methods for idle registration and idle handoff in a femto environment
US20100260103A1 (en)2007-10-302010-10-14Jiann-Ching GueyDistributed Antenna System
JP2013102450A (en)2007-11-022013-05-23Alcatel-Lucent Usa IncInterpolation method and apparatus for increasing efficiency of crosstalk estimation
US20120281622A1 (en)2007-12-172012-11-08Ofer SabanMultiple data services over a distributed antenna system
US20090186611A1 (en)2007-12-182009-07-23Voyant International CorporationAircraft broadband wireless system and methods
US20090207822A1 (en)2007-12-312009-08-20Lg Electronics Inc.Method for transmitting and receiving signals using collaborative MIMO scheme
US20120108278A1 (en)2007-12-312012-05-03Jae Wan KimMethod for reducing inter-cell interference
US20090168914A1 (en)2007-12-312009-07-02Motorola, Inc.Method and System for Utilizing Transmit Local Oscillator for Improved Cell Search and Multi-Link Communication in Multi-Mode Device
WO2009099752A1 (en)2008-02-012009-08-13Dish Network LlcMethods and apparatus for place shifting content to a vehicle entertainment system
US20090195355A1 (en)2008-02-012009-08-06Cynthia Sue MitchellMethods and apparatus for place shifting content to a vehicle entertainment system
CN102186541A (en)2008-02-012011-09-14耐克国际有限公司Systems and methods for fitting golfers with golf clubs
US20090202016A1 (en)2008-02-082009-08-13Qualcomm IncorporatedOpen-loop transmit diversity schemes with four transmit antennas
US20090209206A1 (en)2008-02-152009-08-20The Hong Kong University Of Science And TechnologyOptimal mimo isi channel estimation using loosely synchronized codes and their variations
JP2009213052A (en)2008-03-062009-09-17Sumitomo Electric Ind LtdWireless communication apparatus
US20110007856A1 (en)2008-03-072011-01-13Nortel Networks LimitedMethod and system for reduced system-time overhead parameter length representation for inter-radio access technology communication
US20090227292A1 (en)2008-03-082009-09-10Qualcomm IncorporatedMethods and apparatus for using polarized antennas in wireless networks including single sector base stations
US20090227249A1 (en)2008-03-102009-09-10Elektrobit Wireless Communications OyAdaptive transmission method and a base station using the method
US20120328301A1 (en)2008-03-122012-12-27Hypres, Inc.Digital radio frequency transceiver system and method
US20140340260A1 (en)2008-03-132014-11-20Cubic CorporationDigital beamforming antenna and datalink array
US20090232245A1 (en)2008-03-172009-09-17Qualcomm IncorporatedMulti-resolution beamforming based on codebooks in mimo systems
CN101981826A (en)2008-03-282011-02-23爱立信电话股份有限公司 Method and apparatus for antenna selection in a MIMO system
US20120127977A1 (en)2008-04-042012-05-24Gregory Clark CopelandSynchronization of time in a mobile ad-hoc network
US20090254790A1 (en)2008-04-072009-10-08Samsung Electronics Co., Ltd.Methods and apparatus to improve communication in a relay channel
WO2009125962A2 (en)2008-04-072009-10-15Samsung Electronics Co., Ltd.Methods and apparatus to improve communication in a relay channel
JP2011517393A (en)2008-04-072011-06-02サムスン エレクトロニクス カンパニー リミテッド Method and equipment for improving communication in a relay channel
US20090262695A1 (en)2008-04-222009-10-22Texas Instruments IncorporatedRank and pmi in download control signaling for uplink single-user mimo (ul su-mimo)
US20100099428A1 (en)2008-04-222010-04-22Qualcomm IncorporatedNull pilots for interference estimation in a wireless communication network
US20090268675A1 (en)2008-04-282009-10-29Hyung-Nam ChoiApparatus and methods for transmission and reception of data in multi-antenna systems
US8731480B2 (en)2008-05-072014-05-20Lg Electronics Inc.Method for transmitting and receiving data in a cooperative multiple-input multiple-output mobile communication system
CN102007707A (en)2008-05-072011-04-06Lg电子株式会社Method for transmitting and receiving data in a cooperative multiple-input multiple-output mobile communication system
US20110038436A1 (en)2008-05-072011-02-17Jae Wan KimMethod for transmitting and receiving data in a cooperative multiple-input multiple-output mobile communication system
JP2011524117A (en)2008-05-212011-08-25サンプリファイ システムズ インコーポレイテッド Signal compression in base transceiver systems.
US20090290517A1 (en)2008-05-212009-11-26Rao Sudarshan ACalibrating radiofrequency paths of a phased-array antenna
US20090290632A1 (en)2008-05-212009-11-26Samplify Systems, Inc.Compression of signals in base transceiver systems
CN102027636A (en)2008-05-212011-04-20阿尔卡特朗讯美国公司 Calibrating the RF Path of a Phased Array Antenna
US20090296650A1 (en)2008-06-032009-12-03Nec Laboratories America, Inc.Coordinated linear beamforming in downlink multi-cell wireless networks
WO2009151989A2 (en)2008-06-122009-12-17Intel CorporationTechniques for spatial reuse in wireless personal area networks based on virtual time divisional multiple access
US20150271003A1 (en)2008-06-182015-09-24Centre Of Excellence In Wireless TechnologyPrecoding for single transmission streams in multiple antenna systems
US20090318183A1 (en)2008-06-232009-12-24Nokia CorporationMethod, apparatus and computer program for downlink mu-mimo power settings and control
JP2010016674A (en)2008-07-042010-01-21Fujitsu LtdRadio communication apparatus, system and method
US20160157146A1 (en)2008-07-072016-06-02Odyssey Wireless, Inc.Systems/methods of spatial multiplexing
JP2010021999A (en)2008-07-092010-01-28Intel CorpBandwidth allocation base station and method for allocating uplink bandwidth using sdma
US20100008331A1 (en)2008-07-092010-01-14Qinghua LiBandwidth allocation base station and method for allocating uplink bandwidth using sdma
US20110142104A1 (en)2008-07-162011-06-16Telefonaktiebolaget L M Ericsson (Publ)Base and Repeater Stations
US20110090840A1 (en)2008-07-212011-04-21Electronics And Telecommunications Research InstituteCommunication system for removing transmission overhead
US20100034151A1 (en)2008-08-072010-02-11Angeliki AlexiouMethod of joint resource allocation and clustering of base stations
WO2010017482A1 (en)2008-08-072010-02-11Qualcomm IncorporatedMethod and apparatus for supporting multi-user and single-user mimo in a wireless communication system
WO2010019524A2 (en)2008-08-112010-02-18Qualcomm IncorporatedAnchor carrier in a multiple carrier wireless communication system
US8705484B2 (en)2008-08-152014-04-22Ntt Docomo, Inc.Method for varying transmit power patterns in a multi-cell environment
US8902862B2 (en)2008-08-202014-12-02Qualcomm IncorporatedMethod and apparatus for sharing signals on a single channel
US20110164697A1 (en)2008-09-122011-07-07Telefonaktiebolaget Lm Ericsson (Publ)Methods and devices for spatial coding
JP2010068496A (en)2008-09-122010-03-25Fujitsu LtdCommunication characteristic control method, pilot control method, base station device and mobile station device
JP2010074520A (en)2008-09-182010-04-02Nec CorpCommunication system, transmitting device, receiving device, and communication method
US20130010840A1 (en)2008-09-252013-01-10Research In Motion LimitedX-MIMO Systems with Multi-Transmitters and Multi-Receivers
US20120039419A1 (en)2008-09-252012-02-16Mohammad Ali Maddah-AliX-mimo systems with multi-transmitters and multi-receivers
US20130115986A1 (en)2008-09-302013-05-09Apple Inc.Methods and apparatus for partial interference reduction within wireless networks
US20100080163A1 (en)2008-09-302010-04-01Qualcomm IncorporatedApparatus and methods of providing and receiving venue level transmissions and services
US20100080323A1 (en)2008-09-302010-04-01Markus MueckMethods and apparatus for partial interference reduction within wireless networks
US20110305195A1 (en)2008-10-272011-12-15Andreas ForckMethod for Network Co-ordination in a Mobile Communications System and Apparatus Thereof
US20120289284A1 (en)2008-10-292012-11-15Telefonaktiebolaget L M Ericsson (Publ)Cell Type Information Sharing Between Neighbor Base Stations
US20100220671A1 (en)2008-11-212010-09-02Samuel GuillouardMethod for transmission of data and method for corresponding reception
WO2010067419A1 (en)2008-12-092010-06-17株式会社日立製作所Wireless communication system and wireless communication method
US20100157861A1 (en)2008-12-182010-06-24Cisco Technology, Inc.Beamforming spatial de-multiplexing for collaborative spatially multiplexed wireless communication
US7995973B2 (en)2008-12-192011-08-09Telefonaktiebolaget Lm Ericsson (Publ)Own transmitter interference tolerant transceiver and receiving methods
US8090320B2 (en)2008-12-192012-01-03Telefonaktiebolaget Lm Ericsson (Publ)Strong signal tolerant OFDM receiver and receiving methods
CN101442388A (en)2008-12-292009-05-27北京邮电大学Precoding method and apparatus for multi-input multi-output system
US20100164802A1 (en)2008-12-312010-07-01Intel CorporationArrangements for beam refinement in a wireless network
TW201031243A (en)2009-01-132010-08-16Qualcomm IncEnvironment-specific measurement weighting in wireless positioning
US20100195527A1 (en)2009-02-022010-08-05Qualcomm IncorporatedScheduling algorithms for cooperative beamforming based on resource quality indication
US20100203887A1 (en)2009-02-102010-08-12Kim HakscongMethod and apparatus for coordinated multiple point transmission and reception
US20110310994A1 (en)2009-02-132011-12-22Lg Electronics Inc.Data transmission method and apparatus in multiple antenna system
JP2010193189A (en)2009-02-182010-09-02Nippon Telegr & Teleph Corp <Ntt>Distributed antenna system and distributed antenna control method
US20120014415A1 (en)2009-02-192012-01-19Atheros Communications, Inc.Transmitter beamforming steering matrix processing and storage
US8428177B2 (en)2009-02-252013-04-23Samsung Electronics Co., Ltd.Method and apparatus for multiple input multiple output (MIMO) transmit beamforming
US20100220679A1 (en)2009-02-272010-09-02Qualcomm IncorporatedMethods and apparatuses for scheduling uplink request spatial division multiple access (rsdma) messages in an sdma capable wireless lan
JP2010206794A (en)2009-03-022010-09-16Mitsubishi Electric Research Laboratories IncMethod for optimizing performance in multi-cell orthogonal frequency-division multiple access networks including set of base stations
US20100227562A1 (en)2009-03-042010-09-09Samsung Electronics Co., Ltd.Method and apparatus for eliminating multi-user interference in multi-antenna system
US20100234071A1 (en)2009-03-122010-09-16Comsys Communication & Signal Processing Ltd.Vehicle integrated communications system
US20100232336A1 (en)2009-03-132010-09-16Sharp Laboratories Of America, Inc.Systems and methods for selecting antennas for coordinated multipoint transmission
US20100238984A1 (en)2009-03-192010-09-23Motorola, Inc.Spatial Information Feedback in Wireless Communication Systems
JP2012521180A (en)2009-03-202012-09-10クゥアルコム・インコーポレイテッド Feedback mechanism for beamforming operation
US20100238824A1 (en)2009-03-202010-09-23Qualcomm IncorporatedFeedback mechanisms for beamforming operation
US20120014477A1 (en)2009-03-232012-01-19Hyun Soo KoMethod and apparatus for transmitting reference signal in multi-antenna system
US8548384B2 (en)2009-03-252013-10-01Samsung Electronics Co., Ltd.Adaptive interference alignment precoding and decoding to prevent multi-cell interference
US20100260060A1 (en)2009-04-082010-10-14Qualcomm IncorporatedIntegrated calibration protocol for wireless lans
US20100265842A1 (en)2009-04-212010-10-21Qualcomm IncorporatedEnabling support for transparent relays in wireless communication
EP2244390A2 (en)2009-04-232010-10-27NTT DoCoMo, Inc.Radio communication apparatus and method
US8320432B1 (en)2009-04-272012-11-27Indian Institute of Science at BangaloreDevice and method for precoding vectors in a communication system
US20100279625A1 (en)2009-05-042010-11-04Hyunsoo KoMethod fof transmitting control information in wireless communication system
CN102439891A (en)2009-05-122012-05-02翔跃通信公司 Dual mode radio for frequency division multiplexing and time division multiplexing communication modes
US20100290369A1 (en)2009-05-122010-11-18Airhop Communications, Inc.Dual mode radio for frequency division duplexing and time division duplexing communication modes
US20100290382A1 (en)2009-05-142010-11-18Dennis HuiDistributed computation of precoding weights for coordinated multipoint transmission on the downlink
EP2252109A1 (en)2009-05-152010-11-17ST-NXP Wireless FranceMethod and apparatus for performing inter radio access technology radio measurements
US20120051258A1 (en)2009-05-152012-03-01St-Ericsson (France) SasMethod and Apparatus for Performing Inter Radio Access Technology Measurements
US20120046039A1 (en)2009-05-202012-02-23Telefonaktiebolaget L M Ericsson (Publ)Methods and arrangements in a wireless communication system
KR20120024836A (en)2009-05-222012-03-14콸콤 인코포레이티드Methods, apparatuses and computer program products for distributed scheduling to facilitate interference management
US8116710B2 (en)2009-06-042012-02-14Telefonaktiebolaget L M Ericsson (Publ)Continuous sequential scatterer estimation
US20120076042A1 (en)2009-06-072012-03-29Sung Duck ChunMethod and apparatus for random access in a multi-carrier wireless communication system
US20120051257A1 (en)2009-06-182012-03-01Hyung Tae KimMethod and apparatus for feeding back channel state information
US20120106388A1 (en)2009-06-182012-05-03Sharp Kabushiki KaishaCommunication system, communication apparatus and communication method
US20100322176A1 (en)2009-06-192010-12-23Runhua ChenMultiple CQI Feedback for Cellular Networks
US20100323611A1 (en)2009-06-192010-12-23Sharp Laboratories Of America, Inc.Systems and methods for coherent precoding with antenna selection for coordinated multipoint transmission
JP2012532495A (en)2009-06-292012-12-13クゥアルコム・インコーポレイテッド Open loop channel reporting in wireless communication systems
US20110149765A1 (en)2009-06-292011-06-23Qualcomm IncorporatedOpen loop channel reporting in a wireless communication system
US20120114021A1 (en)2009-07-132012-05-10Lg Electronics Inc.Method and apparatus for configuring a transmission mode for a backhaul link transmission
US20110019715A1 (en)2009-07-242011-01-27At&T Mobility Ii LlcAsymmetrical receivers for wireless communication
JP2011035912A (en)2009-08-052011-02-17Ntt Docomo IncMethod and base station for obtaining channel quality indicator information
US20110194504A1 (en)2009-08-122011-08-11Qualcomm IncorporatedMethod and apparatus for supporting single-user multiple-input multiple-output (su-mimo) and multi-user mimo (mu-mimo)
TW201112665A (en)2009-08-122011-04-01Qualcomm IncMethod and apparatus for supporting single-user multiple-input multiple-output (SU-MIMO) and multi-user MIMO (MU-MIMO)
JP2013502117A (en)2009-08-142013-01-17ノキア シーメンス ネットワークス オサケユキチュア Improvements for multipoint coordinated transmission
US20120176982A1 (en)2009-08-142012-07-12Wolfgang ZirwasTransparent frequency shift Solution for Comp
WO2011018121A1 (en)2009-08-142011-02-17Nokia Siemens Networks OyImprovements for coordinated multipoint transmission
US20110164597A1 (en)2009-08-172011-07-07Broadcom CorporationMulti-user uplink communications within multiple user, multiple access, and/or MIMO wireless communication systems
US9094180B2 (en)2009-08-242015-07-28Nokia Siemens Networks OyChannel-adaptive transmission in a distributed coordinated multi-point transmission system
US20110051832A1 (en)2009-08-262011-03-03Qualcomm IncorporatedMethods for determining reconstruction weights in a mimo system with successive interference cancellation
US20110069638A1 (en)2009-09-242011-03-24Kentaro IshizuCognitive communication network system and communicating method thereof
US20110077038A1 (en)2009-09-302011-03-31Qualcomm IncorporatedScrambling sequence initialization for coordinated multi-point transmissions
JP2013507064A (en)2009-09-302013-02-28クゥアルコム・インコーポレイテッド Scrambling sequence initialization for cooperative multi-point transmission
JP2011078025A (en)2009-10-012011-04-14Ntt Docomo IncCoordinated transmission method, coordinated transmission system, central station and radio base station
US20110105174A1 (en)2009-10-022011-05-05Interdigital Patent Holdings, Inc.Method and apparatus for transmit power control for multiple antenna transmissions in the uplink
US20110086611A1 (en)2009-10-092011-04-14At&T Mobility Ii LlcMobile device leasing with customized operational features
US20110085610A1 (en)2009-10-122011-04-14Motorola, Inc.Configurable Spatial Channel Information Feedback in Wireless Communication System
US20120188988A1 (en)2009-10-122012-07-26Lg Electronics Inc.Method and apparatus for providing downlink reference signal transmission power information in a wireless communication system that supports multiple antennas
US20110090885A1 (en)2009-10-152011-04-21Saeid SafaviMethods and apparatus for centralized and coordinated interference mitigation in a wlan network
US20150011197A1 (en)2009-10-162015-01-08ReVerb Networks, Inc.Self-optimizing wireless network
US20110096736A1 (en)2009-10-282011-04-28Samsung Electronics Co., Ltd.Communication system having network access structure
JP2011097225A (en)2009-10-282011-05-12Kyocera CorpRadio base station, and radio communication method
US20120218968A1 (en)2009-11-052012-08-30Lg Electronics Inc.Method for transmitting channel quality information, and apparatus for same
US20110111781A1 (en)2009-11-092011-05-12Qualcomm IncorporatedReference signaling for a high-mobility wireless communication device
US20120236840A1 (en)2009-11-242012-09-20Electronics And Telecommunications Research InstituteMethod for protecting data in a mu-mimo based wireless communication system
US20110135308A1 (en)2009-12-092011-06-09Luigi TarlazziDistributed antenna system for mimo signals
US20110142020A1 (en)2009-12-102011-06-16Lg Electronics Inc.Method and apparatus of transmitting training signal in wireless local area network system
US20120044111A1 (en)2009-12-282012-02-23Masahiko NagoshiAntenna apparatus resonating in plural frequency bands in inverted f antenna
RU2012121952A (en)2010-01-152014-02-20ЗетТиИ Корпорейшн METHOD FOR TRANSMISSION OF INFORMATION ON PAIRING AUXILIARY CARRIER FREQUENCIES, UNIT IN AND TRANSMISSION IMPLEMENTATION SYSTEM
US8638880B2 (en)2010-01-182014-01-28Telefonaktiebolaget Lm Ericsson (Publ)Radio base station and user equipment and methods therein
TW201212570A (en)2010-01-202012-03-16Broadcom CorpA method and system for orthogonalized beamforming in multiple user multiple input multiple output (MU-MIMO) communication systems
US20110216662A1 (en)2010-01-212011-09-08Chun NieCoopmax: a cooperative mac with randomized distributed space time coding for an ieee 802.16 network
US20110195670A1 (en)2010-02-082011-08-11Sriraman DakshinamurthyMethod and system for uplink beamforming calibration in a multi-antenna wireless communication system
WO2011099802A2 (en)2010-02-112011-08-18Lg Electronics Inc.Method and apparatus of recovering backhaul link failure between base station and relay node
CN102158272A (en)2010-02-122011-08-17华为技术有限公司Method, device and system for calibrating radio-frequency channels
WO2011100492A1 (en)2010-02-122011-08-18Interdigital Technology CorporationData split between multiple sites
US20110199946A1 (en)2010-02-172011-08-18Qualcomm IncorporatedMethod and apparatus for supporting adaptive channel state information feedback rate in multi-user communication systems
JP2011176493A (en)2010-02-232011-09-08Ntt Docomo IncSystem for feedback of transmission route information
US20110205963A1 (en)2010-02-242011-08-25Futurewei Technologies, Inc.System and Method for Reduced Feedback in Multiuser Multiple Input, Multiple Output Wireless Communications
WO2011116824A1 (en)2010-03-252011-09-29Telefonaktiebolaget L M Ericsson (Publ)Method for backhaul link protection in a mimo wireless link
US20130033998A1 (en)2010-03-292013-02-07Inkwon SeoMethod and apparatus for measurement for inter-cell interference coordination in radio communication system
US20110261769A1 (en)2010-04-262011-10-27Samsung Electronics Co. Ltd.Method and apparatus for controlling inter-cell interference of control channels in ofdm-based hierarchical cellular system
US20110274053A1 (en)2010-05-062011-11-10Qualcomm IncorporatedSystem and method for controlling downlink packet latency
US9089002B2 (en)2010-05-162015-07-21Qualcomm IncorporatedEfficient group ID management for wireless local area networks (WLANs)
US20110294527A1 (en)2010-05-262011-12-01Qualcomm IncorporateApparatus for Clustering Cells Using Neighbor Relations
US20130058307A1 (en)2010-06-082013-03-07Lg Electronics Inc.Method and device for transmitting/receiving channel state information in coordinated multipoint communication system
WO2011155763A2 (en)2010-06-082011-12-15엘지전자 주식회사Method and device for transmitting/receiving channel state information in coordinated multipoint communication system
US20110306381A1 (en)2010-06-152011-12-15Futurewei Technologies, Inc.System and Method for Transparent Coordinated Beam-Forming
US20110310987A1 (en)2010-06-162011-12-22Samsung Electronics Co., Ltd.Uplink power control method for mobile communication system
CN102948085A (en)2010-06-182013-02-27日本电气株式会社Precoding techniques for downlink coordinated multipoint transmission in radio communications system
US20130089159A1 (en)2010-06-182013-04-11Nec CorporationPrecoding techniques for downlink coordinated multipoint transmission in radio communications system
US20130094548A1 (en)2010-06-212013-04-18Pantech Co., Ltd.Method for transmitting channel information, device thereof, base station, and method for transmitting for base station thereof
WO2012000278A1 (en)2010-06-282012-01-05中兴通讯股份有限公司A method and device for realizing frequency spectrum coordination between tdd system and fdd system
KR20120001598A (en)2010-06-282012-01-04엘지전자 주식회사 Method and apparatus for transmitting synchronization signal in multi-node system
US20120002743A1 (en)*2010-06-302012-01-05Charles Casimiro CavalcanteStatistical Joint Precoding in Multi-Cell, Multi-User MIMO
WO2012001086A1 (en)2010-06-302012-01-05Telefonaktiebolaget L M Ericsson (Publ)Joint precoding in a mu-mimo communication system using an algorithm for optimizing the ergodic sum capacity based on feedback of statistical channel information
US20130114763A1 (en)2010-07-052013-05-09Pantech Co., Ltd.Transmitting device and a method of communicating therewith, and receiving device and a method of communicating therewith
KR20120003781A (en)2010-07-052012-01-11주식회사 팬택 Transmission apparatus and its communication method, receiving apparatus and its communication method
CN101873281A (en)2010-07-152010-10-27西安电子科技大学 A Reciprocity Loss Compensation Method for 2×2 TDD-MIMO System Channel
WO2012007837A1 (en)2010-07-162012-01-19Alcatel LucentMethod and device for selecting user terminal so as to enhance reciprocity error calibration between uplink and downlink
US20120021707A1 (en)2010-07-262012-01-26Qualcomm IncorporatedApparatus and method for adjustment of transmitter power in a system
CN103069903A (en)2010-08-132013-04-24高通股份有限公司Backward compatible lte system design for asymmetric uplink/downlink spectrum
WO2012024454A1 (en)2010-08-172012-02-23Qualcomm IncorporatedApparatus and method for controlling inter-cell interference between femtocells and macrocells
US20140241218A1 (en)2010-08-262014-08-28Golba LlcMethod and system for distributed communication
US20120054172A1 (en)2010-08-312012-03-01International Business Machines CorporationMethod and system for transmitting a query in a wireless network
US20130188567A1 (en)*2010-09-082013-07-25James June-Ming WangPSMP-Based Downlink Multi-User MIMO Communications
US20120039320A1 (en)2010-09-142012-02-16Dali Systems Co., Ltd.Remotely Reconfigurable Distributed Antenna System and Methods
US20120076236A1 (en)2010-09-262012-03-29Lg Electronics Inc.Method and apparatus for efficient feedback in a wireless communication system supporting multiple antenna
US20120076023A1 (en)2010-09-262012-03-29Lg Electronics Inc.Method and apparats for performing efficient feedback in wireless communication system supporting multiple antenna
US20120076028A1 (en)2010-09-292012-03-29Hyunsoo KoMethod and apparatus for performing effective feedback in wireless communication system supporting multiple antennas
US20130195467A1 (en)2010-10-012013-08-01Andrew LlcDistributed antenna system for mimo signals
US20130170360A1 (en)2010-10-012013-07-04Clearwire Ip Holdings LlcEnabling coexistence between fdd and tdd wireless networks
WO2012044969A1 (en)2010-10-012012-04-05Andrew LlcDistributed antenna system for mimo signals
US20120082038A1 (en)2010-10-012012-04-05Clear Wireless, LlcEnabling coexistence between fdd and tdd wireless networks
US20120087261A1 (en)2010-10-062012-04-12Qualcomm IncorporatedDynamic switching between common reference signal interference cancelation and resource element puncturing in a co-channel heterogeneous network
WO2012058600A2 (en)2010-10-292012-05-03Lilee Systems, LtdSystem and method of frequency offset compensation for radio system with fast doppler shift
RU2543092C2 (en)2010-11-012015-02-27Риарден, ЛлкSystems and methods to coordinate transmissions in distributed wireless systems via user clustering
US20120108928A1 (en)2010-11-012012-05-03Oxirate, Inc.System and Method for Measurement of Vital Signs of a Human
WO2012061325A1 (en)2010-11-012012-05-10Rearden, LlcSystems and methods to coordinate transmissions in distributed wireless systems via user clustering
US20140146756A1 (en)2010-11-102014-05-29Interdigital Patent Holdings, Inc.Method and apparatus for interference mitigation via successive cancellation in heterogeneous networks
JP2012120063A (en)2010-12-032012-06-21Hitachi LtdRadio base station device to control antenna transmission power
JP2012124859A (en)2010-12-102012-06-28Sharp CorpCommunication system, base station device, communication method and communication program
US20140295758A1 (en)2010-12-142014-10-02Thomas PedersenDocking station for a handheld telecommunication device
US20120163427A1 (en)2010-12-232012-06-28Electronics And Telecommunications Research InstituteSystem and method for synchronous transmission of content
US20130272250A1 (en)2010-12-272013-10-17Sharp Kabushiki KaishaBase-station apparatus, terminal apparatus, communication system, and communication method
US20130273950A1 (en)2011-01-102013-10-17Alcatel LucentInterference suppression method and apparatus in multi-point coordinated transmission system
CN102594420A (en)2011-01-102012-07-18上海贝尔股份有限公司Interference suppression method and interference suppression device in multipoint coordinated transmission system
US20130272441A1 (en)2011-01-122013-10-17Adc Telecommunications, Inc.Distinct transport path for mimo transmissions in distributed antenna systems
KR20120084243A (en)2011-01-192012-07-27엘지전자 주식회사Method and apparatus for receiving signal in multi-node system
US20130329592A1 (en)2011-02-032013-12-12Nvidia CorporationSystem and method for reducing interference
US20130286997A1 (en)*2011-02-072013-10-31Intel CorporationWireless communication sysytem with common cell id
CN103201958A (en)2011-02-072013-07-10大理系统有限公司 Daisy-chained ring of remote units for distributed antenna systems
US20130028109A1 (en)2011-02-092013-01-31Telefonaktiebolaget Lm Ericsson (Publ)Point-Dependent Resource Symbol Configuration in a Wireless Cell
WO2012108807A1 (en)2011-02-092012-08-16Telefonaktiebolaget L M Ericsson (Publ)Point-dependent resource symbol configuration in a wireless cell
WO2012108976A1 (en)2011-02-112012-08-16Qualcomm IncorporatedCooperation of a macro node and remote radio heads in heterogeneous networks
US20130315195A1 (en)2011-02-112013-11-28Electronics & Telecommunications Research InstituteWireless communication system using multiple transmission and reception points
US20120236741A1 (en)2011-02-142012-09-20Qualcomm IncorporatedPower control and user multiplexing for heterogeneous network coordinated multipoint operations
US20130051240A1 (en)2011-02-142013-02-28Qualcomm IncorporatedCRS (COMMON REFERENCE SIGNAL) AND CSI-RS (CHANNEL STATE INFORMATION REFERENCE SIGNAL) TRANSMISSION FOR REMOTE RADIO HEADS (RRHs)
JP2012175189A (en)2011-02-172012-09-10Sharp CorpRadio transmitter, radio receiver, radio communications system, control program, and integrated circuit
US20130322308A1 (en)2011-02-182013-12-05Zte CorporationMethod and system for providing service from TDD cell to terminal
US20120224528A1 (en)2011-03-042012-09-06Pablo TapiaPacket-switched core network architecture for voice services on second- and third- generation wireless access networks
US20140010197A1 (en)2011-03-102014-01-09Fujitsu LimitedInterference coordinating method, base station and user equipment
US20120230691A1 (en)2011-03-112012-09-13Dennis HuiMethod of downlink signal transport over backhaul communications through distributed processing
US20140016556A1 (en)2011-03-242014-01-16Sharp Kabushiki KaishaBase station, terminal, communication system, communication method, and integrated circuit
US20140064206A1 (en)*2011-03-252014-03-06Dongshan BaoResource Scheduling Method and Device
WO2012130071A1 (en)2011-03-252012-10-04北京新岸线无线技术有限公司Resource scheduling method and device
US20120252470A1 (en)2011-03-312012-10-04Wendy WongDistributed adaptive resource allocation to enhance cell edge throughput
KR20120119175A (en)2011-04-202012-10-30주식회사 팬택Method and apparatus for transmitting/receiving channel state information in wireless communication system
US20140038619A1 (en)2011-04-272014-02-06Fujitsu LimitedWireless communication with co-operating cells
US20130315189A1 (en)2011-04-292013-11-28Lg Electronics Inc.Method and apparatus for transmitting channel status information in wireless communication system
US20120275530A1 (en)2011-04-292012-11-01Interdigital Patent Holdings, Inc.Open loop spatial processing
US20140029490A1 (en)2011-05-022014-01-30Lg Electronics Inc.Method for transmitting/receiving data in wireless access system and base station for same
US20120281555A1 (en)2011-05-022012-11-08Research In Motion LimitedSystems and Methods of Wireless Communication with Remote Radio Heads
US20120288022A1 (en)2011-05-092012-11-15Jiann-Ching GueyChannel estimation for a very large-scale multiple-input multiple-output (mimo) system
US20140198744A1 (en)2011-05-172014-07-17Interdigital Patent Holdings, Inc.Method and apparatus for data-splitting transmission from multiple sites
US20120300717A1 (en)2011-05-242012-11-29Kabushiki Kaisha ToshibaMethod and apparatus for antenna selection in wireless communications systems
US20120314797A1 (en)2011-06-092012-12-13Andrew LlcDistributed Antenna System Interface for Processing Digital Signals in a Standardized Format
US20140113677A1 (en)2011-06-212014-04-24Telefonaktiebolaget L M Ericsson (Publ)User equipment and a method therein for transmission power control of uplink transmissions
US20140112216A1 (en)2011-06-292014-04-24Lg Electronics Inc.Method and apparatus for controlling inter-cell interference in wireless communication system
CA2838781A1 (en)2011-06-292013-01-03Adc Telecommunications, Inc.Evolved distributed antenna system
US20130003658A1 (en)2011-06-292013-01-03Lgc Wireless, LlcEvolved distributed antenna system
US20140094169A1 (en)2011-07-072014-04-03Sony CorporationCommunication device and communication method
US20140153427A1 (en)2011-07-252014-06-05Lg Electronics Inc.Method and apparatus for monitoring a wireless link in a wireless communication system
US20150131751A1 (en)2011-08-012015-05-14Blackberry LimitedJoint transmission using interference alignment
US20140206280A1 (en)2011-08-042014-07-24Telefonaktiebolaget L M Ericsson (Publ)Enhanced Rank For Outdoor to Indoor Coverage
US20130039387A1 (en)2011-08-102013-02-14Futurewei Technologies, Inc.System and Method for Signaling and Transmitting Uplink Reference Signals
US8849339B2 (en)2011-08-122014-09-30Telefonaktiebolaget L M Ericsson (Publ)Closed loop power control in a heterogeneous network by selecting among sets of accumulative power step values
US20130208604A1 (en)2011-08-122013-08-15Interdigital Patent Holdings, Inc.Interference Measurement In Wireless Networks
US20130039332A1 (en)2011-08-122013-02-14Interdigital Patent Holdings, Inc.Method and apparatus for multiple-input multiple-output operation
US20130039349A1 (en)2011-08-122013-02-14Research In Motion LimitedMethods of Channel State Information Feedback and Transmission in Coordinated Multi-Point Wireless Communications System
US20140219152A1 (en)2011-08-152014-08-07Telefonaktiebolaget L M Ericsson (Publ)Method and an Apparatus in a User Equipment for Controlling Transmission Power of the User Equipment
US20140219202A1 (en)2011-08-192014-08-07Lg Electronics Inc.Method for transmitting uplink control information, user equipment, method for receiving uplink control information, and base station
US20130044797A1 (en)2011-08-192013-02-21Telefonaktiebolaget Lm Ericsson (Publ)Methods of receiving multiple input multiple output signals and related communication devices
US20140185700A1 (en)2011-09-062014-07-03Huawei Technologies Co., Ltd.Method and apparatus for linear precoding in multi-user multiple-input multiple-output system
US20130064216A1 (en)2011-09-122013-03-14Research In Motion LimitedDMRS Association and Signaling for Enhanced PDCCH in LTE Systems
CN103797725A (en)2011-09-142014-05-14李尔登公司 Systems and methods for utilizing regions of coherence in wireless systems
EP3419188A1 (en)2011-09-142018-12-26Rearden Mova, LLCSystems and methods to exploit areas of coherence in wireless systems
WO2013040089A2 (en)2011-09-142013-03-21Rearden, LlcSystems and methods to exploit areas of coherence in wireless systems
US20130089009A1 (en)2011-09-192013-04-11Li Erran LiMethod and apparatus for interference cancellation for antenna arrays
US20130077569A1 (en)2011-09-222013-03-28Samsung Electronics Co. Ltd.Apparatus and method for uplink transmission in wireless communication systems
US20130077514A1 (en)2011-09-232013-03-28Esmael Hejazi DinanChannel State Information Transmission
US20140294108A1 (en)2011-09-232014-10-02Raul Hernan EtkinExtrapolating Channel State Information ("CSI") Estimates From Multiple Packets Sent Over Different Antennas to Generate a Combined CSI Estimate for a MIMO-OFDM System
US20130083681A1 (en)2011-09-302013-04-04Research In Motion LimitedMethods of Channel State Information Feedback and Transmission in Coordinated Multi-Point Wireless Communications System
US20130114437A1 (en)2011-11-042013-05-09Qualcomm IncorporatedMethod and apparatus for interference cancellation by a user equipment using blind detection
US20140307630A1 (en)2011-11-072014-10-16Ntt Docomo, Inc.Radio communication system, radio base station apparatus, user terminal and radio communication method
US20140301278A1 (en)2011-11-072014-10-09Nokia Solutions And Networks OyMethod and apparatus for receiving uplink signals
US20140056156A1 (en)2011-11-092014-02-27George JöngrenCSI Reporting for a Set of CSI-RS Resources
US20140301345A1 (en)2011-11-172014-10-09Lg Electronics Inc.Method for receiving uplink signal, base station, method for transmitting uplink signal and user equipment
US20130128821A1 (en)2011-11-182013-05-23Nokia Siemens Networks OyDemodulation Reference Signal Arrangement For Uplink Coordinated Multi-Point Reception
US20140348090A1 (en)2011-12-022014-11-27Nec CorporationMethod of providing control information for user equipment in lte communication system
US20130142290A1 (en)2011-12-022013-06-06Futurewei Technologies, Inc.Method and Apparatus for Modulation and Coding Scheme Adaption in a MIMO System
US20140341143A1 (en)2012-01-202014-11-20Lg Electronnics Inc,Method of sending/receiving control information and device therefor
US20150003311A1 (en)2012-01-262015-01-01Panasonic Intellectual Property Corporation Of AmericaDiscontinuous reception operation with additional wake-up opportunities
US20130195047A1 (en)2012-01-302013-08-01Renesas Mobile CorporationMethod and apparatus implementing channel quality control
US20130195086A1 (en)2012-02-012013-08-01Qualcomm IncorporatedTiming management in uplink (ul) coordinated multipoint (comp) transmission
US20130286958A1 (en)2012-02-012013-10-31Huawei Technologies Co., Ltd.Method, base station, and user equipment for accessing physical random access channel
US20130208671A1 (en)2012-02-032013-08-15Telefonaktiebolaget L M Ericsson (Publ)Apparatus, systems, methods, and computer products suitable for use in an advanced digital baseband processor
US20140245095A1 (en)*2012-02-082014-08-28Telefonaktiebolaget L M Ericsson (Publ)Methods of communicating data including shared ack/nack messages and related devices
US20160302028A1 (en)2012-02-152016-10-13Maxlinear, Inc.Method and system for broadband near-field communication (bnc) utilizing full spectrum capture (fsc) supporting bridging across wall
US20150049689A1 (en)2012-02-282015-02-19Lg Electronics Inc.Method for transmitting channel state information report and user equipment, and method for receiving channel state information report and base station
US20130286866A1 (en)2012-03-052013-10-31Telefonaktiebolaget Lm Ericsson (Publ)Configuring Channel-State Information Resources used for Reference-Signal-Received-Power Feedback
US20130242890A1 (en)2012-03-162013-09-19Hong HePHYSICAL UPLINK CONTROL CHANNEL (PUCCH) RESOURCE MAPPING USING AN ENHANCED PHYSICAL DOWNLINK CONTROL CHANNEL (ePDCCH)
US20150016317A1 (en)2012-03-172015-01-15Lg Electronics Inc.Method for controlling transmission power of sounding reference signal in wireless communication system and apparatus for same
US20130272170A1 (en)2012-04-132013-10-17Debdeep CHATTERJEEAdaptive ul-dl tdd configurations in a heterogneous network
US20200084673A1 (en)2012-04-242020-03-12Apple Inc.Methods And Apparatus For Opportunistic Radio Resource Allocation In Multi-Carrier Communication Systems
CN104335625A (en)2012-04-242015-02-04苹果公司Methods and apparatus for opportunistic radio resource allocation in multi-carrier communication systems
WO2013166464A1 (en)2012-05-042013-11-07Rearden, LlcSystem and methods for coping with doppler effects in distributed-input distributed-output wireless systems
US20150117392A1 (en)2012-05-162015-04-30Telefonaktiebolaget L M Ericsson (Publ)Method and Arrangement in a Wireless Communication System
WO2013173809A1 (en)2012-05-182013-11-21Rearden, LlcSystems and methods to enhance spatial diversity in distributed input distributed output wireless systems
US20130315211A1 (en)2012-05-252013-11-28University Of Southern CaliforniaAirsync: enabling distributed multiuser mimo with full multiplexing gain
US20150181568A1 (en)2012-06-052015-06-25Lg Electronics Inc.Method and apparatus for receiving control information in wireless communication system
US20130331114A1 (en)2012-06-062013-12-12Eden Rock Communications, LlcAdjacent network aware self organizing network system
US20140348131A1 (en)2012-06-252014-11-27Huawei Device Co., Ltd.Handover method, system, and device
US20150296533A1 (en)2012-06-252015-10-15Kt CorporationMethod and terminal for transmitting and receiving physical uplink data channel mapping information
US20150133126A1 (en)2012-07-312015-05-14Huawei Technologies Co., Ltd.User equipment, network device and method for accessing network system
US20140086209A1 (en)2012-09-262014-03-27Apple Inc.Method for simultaneously receiving lte and 1x in srlte device
US20140086296A1 (en)2012-09-262014-03-27Biljana BadicReceiver with Multi Layer Interference Cancellation
US20140087680A1 (en)2012-09-272014-03-27Nokia CorporationMethod and apparatus for enhancing emergency calling with mobile devices
EP2904814A1 (en)2012-10-022015-08-12Rearden LLCSystems and methods for wireless backhaul in distributed-input distributed-output wireless systems
WO2014055294A1 (en)2012-10-022014-04-10Rearden, LlcSystems and methods for wireless backhaul in distributed-input distributed-output wireless systems
US20140140225A1 (en)2012-11-202014-05-22Adc Telecommunications, Inc.Distributed antenna system with uplink bandwidth for signal analysis
WO2014082048A1 (en)2012-11-262014-05-30Rearden, LlcExploiting inter-cell multiplexing gain in wireless cellular systems
AU2018200832A1 (en)2012-11-262018-02-22Rearden, LlcExploiting inter-cell multiplexing gain in wireless cellular systems
US20140348077A1 (en)2012-12-032014-11-27Xiaogang ChenControl channel design for new carrier type (nct)
CN104025684A (en)2012-12-312014-09-03华为技术有限公司Information transmission method and device
US20150305010A1 (en)2012-12-312015-10-22Huawei Technologies Co., Ltd.Information Transmission Method and Apparatus
US20140219142A1 (en)2013-02-042014-08-07Gary D. SchulzAgile duplexing wireless radio devices
CN104038245A (en)2013-02-042014-09-10优倍快网络公司Radio devices for transmitting wireless signal
US20140219267A1 (en)2013-02-072014-08-07Airvana LlcRadio access networks
US20140225788A1 (en)2013-02-082014-08-14Ubiquiti Networks, Inc.Radio system for long-range high speed wireless communication
US20140226570A1 (en)2013-02-112014-08-14Telefonaktiebolaget L M Ericsson (Publ)Virtual macro cells
US20160013855A1 (en)2013-02-162016-01-14Cable Television Laboratories, Inc.Multiple-input multiple-output (mimo) communication system
US20140241240A1 (en)2013-02-282014-08-28Cisco Technology, Inc.Distributed Processing Distributed-Input Distributed-Output (DIDO) Wireless Communication
JP2016513940A (en)2013-03-122016-05-16リアデン リミテッド ライアビリティ カンパニー System and method for utilizing inter-cell multiplexing gain in wireless cellular systems via distributed input distributed output technology
CN103152807A (en)2013-03-192013-06-12东南大学Method for distributing power between multiple base stations and multiple antennae of TDD (Time Division Duplex) cooperative wireless network
US20140301493A1 (en)2013-04-042014-10-09Mbit Wireless, Inc.Method and apparatus for adaptive antenna sharing
US20140340255A1 (en)2013-04-232014-11-20Dali Systems Co. Ltd.Real-time locating system using gps time difference of arrival with digital off-air access units and remote units
US9331882B2 (en)2013-06-052016-05-03Telefonaktiebolaget L M Ericsson (Publ)Crest factor reduction of carrier aggregated signals
US20160302218A1 (en)2013-08-092016-10-13Telefonaktiebolaget L M Ericsson (Publ)First and Second Base Stations and Methods Performed Therein
US20150131750A1 (en)2013-09-052015-05-14Feng XueAdaptive sectorization of a spational region for parallel multi-user transmissions
US20150098410A1 (en)2013-09-192015-04-09Telefonaktiebolaget L M Ericsson (Publ)System and method for providing interference characteristics for interference mitigation
US20150092416A1 (en)2013-09-272015-04-02Hayward Industries, Inc.Light With Expanding Compression Member
US20160248559A1 (en)2013-10-082016-08-25Zte CorporationInter-Node Interference Reduction Method, Node and System
US20150118369A1 (en)2013-10-282015-04-30Elwha LlcNon-thermal electromagnetic sterilization
EP2889957A1 (en)2013-12-302015-07-01Clemens RheinfelderActive antenna system with distributed transceiver system
CN105981340A (en)2014-02-072016-09-28李尔登公司 Systems and methods for mapping virtual radio instances into physical coherent volumes in a distributed antenna system
US20150229372A1 (en)2014-02-072015-08-13Rearden, LlcSystems and methods for mapping virtual radio instances into physical volumes of coherence in distributed antenna wireless systems
US11190947B2 (en)2014-04-162021-11-30Rearden, LlcSystems and methods for concurrent spectrum usage within actively used spectrum
WO2015160497A1 (en)2014-04-162015-10-22Rearden, LlcSystems and methods for concurrent spectrum usage within actively used spectrum
US20150304855A1 (en)2014-04-162015-10-22Stephen G. PerlmanSystems and methods for concurrent spectrum usage within actively used spectrum
US20160061027A1 (en)2014-08-272016-03-03Schlumberger Technology CorporationElectromagnetic Telemetry for Measurement and Logging While Drilling and Magnetic Ranging Between Wellbores
WO2016037305A1 (en)2014-09-082016-03-17Qualcomm IncorporatedFlexible transmissions on one or more frequency division duplexing resources
US9307506B1 (en)2014-09-092016-04-05Sprint Communications Company L.P.Implementation of a fiber distributed antenna system network while maintaining synchronization
WO2016057304A1 (en)2014-10-092016-04-14Andrew Wireless Systems GmbhDistributed antenna system for mimo signals
US9698881B2 (en)2014-11-142017-07-04Telefonaktiebolaget Lm Ericsson (Publ)Feedback channel transmission and detection in multi antenna wireless communication systems
US10205513B1 (en)2015-03-272019-02-12Lockheed Martin CorporationSystem and method for improved beyond line-of-sight communications using natural phenomena
US20160353290A1 (en)2015-05-272016-12-01Telefonaktiebolaget L M Ericsson (Publ)Method to improve the performance in cell range expansion using location based codebook subset restriction
US20160374070A1 (en)2015-06-192016-12-22Intel IP CorporationControlling uplink transmissions in communication systems with scheduled trigger frames
KR20180061394A (en)2015-10-232018-06-07삼성전자주식회사 Method and apparatus for transmitting and receiving channel state information in a mobile communication system
US10637554B2 (en)2015-11-052020-04-28Sony CorporationWireless communication method and wireless communication device
US20190385057A1 (en)2016-12-072019-12-19Arilou Information Security Technologies Ltd.System and Method for using Signal Waveform Analysis for Detecting a Change in a Wired Network
US10804985B2 (en)2017-05-172020-10-13Sony CorporationElectronic device and communication method
US10749583B2 (en)2017-06-142020-08-18Lg Electronics Inc.Method for transmitting and receiving channel state information in wireless communication system and device for the same

Non-Patent Citations (1143)

* Cited by examiner, † Cited by third party
Title
"Electromagnetic-Wave Propagation", HW Sams Publishers, Reference Data for Radio Engineers, "Electromagnetic-Wave Propagation", 5th Edition, 1973, Chapter 26., (1973), 1-32.
"MIMO System uses SOMA for IEEE802.11", Available Online at <http://www.electronicstalk.com/news/ime/ime149.html>, Electronicstalk, 2004, pp. 1-3.
120801-Shepard-MobiCom 12-Slides.
3GPP Technical Specification Group, "Spatial channel model, SCM-134 text V6.0", Spatial Channel Model AHG (Combined ad-hoc from 3GPP and 3GPP2), Apr. 2003, pp. 1-45.
3GPP TR 25.876 V7.0.0 (Mar. 2007), Technical Report, "3rd Generation Partnership Project; Technical Specification Group Radio Access Network"; Multiple Input Multiple Output in UTRA; (Release 7), pp. 2-76.
3GPP TR 25.912, "Feasibility Study for Evolved UTRA and UTRAN", V9.0.0 (Oct. 2009), Oct. 2009, pp. 1-66.
3GPP TR 25.913, "Requirements for Evolved UTRA (E-UTRA) and Evolved UTRAN (E-UTRAN)", V8.0.0 (Jan. 2009), Jan. 2009, pp. 1-20.
3GPP TR 36.819, "3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Coordinated multi-point operation for LTE physical layer aspects (Release 11)", Dec. 20, 2011, 69 pages.
3GPP TS 36.211 V8.7.0 (May 2009), Technical Specification, 3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Evolved Universal Terrestrial Radio Access (E-UTRA); Physical Channels and Modulation (Release 8), pp. 1-83.
3GPP TSG-RAN WG1 #70, "Uplink timing advance", Qualcomm Incorporated, R1-123695, Aug. 13-17, 2012, 6 pages.
3GPP, "3rd Generation Partnership Project; Technical Specification Group Radio Access Network, Coordinated multi-point operation for LTE physical layer aspects (Release 11)", 3GPP Draft; Draft36819-B10, 3rd Generation Partnership Project; (3GPP), Dec. 20, 2011, V11.1.0, pp. 1-69.
3GPP, "LTE", downloaded from http://www.3gpp.org/LTE on Aug. 14, 2014, 4 pages.
3GPP, "UMTS", Universal Mobile Telecommunications System, pp. 1-2, printed on Nov. 17, 2014, Retrieved from the Internet: < URL: www.3gpp.orgarticleumts>.
3GPP, ETS1136 212 V9.1.0 (2010), "Technical Specification LTE; Evolved Universal Terrestrial Radio Access (E-UTRA); Multiplexing and Channel Coding (3GPP TS 36.212 Verion 9.1.0 Release 9) 3GPP, ETS1136 212 V9.1.C (2010)" 63 pages.
3GPP, TS 36.201, "Evolved Universal Terrestrial Radio Access (E-UTRA); LTE Physical Layer—General Description (Release 11)," Oct. 2012, pp. 1-14.
3GPP, TS 36.211, "Evolved Universal Terrestrial Radio Access (E-UTRA); Physical Channels and Modulation (Release 11)," pp. 1-107, Oct. 2012, submitted as Part 1 and Part 2.
3GPP, TS 36.212, Evolved Universal Terrestrial Radio Access (E-UTRA); Multiplexing and channel coding (Release 11) pp. 1-80, Oct. 2012, submitted as Part 1 and Part 2.
3GPP, TS 36.212.V8.7.0 (May 2009), "Technical Specification 3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Evolved Universal Terrestrial Radio Access (E-UTRA); Multiplexing and channel Coding (Release 8) 3GPP, TS 36.212.V8.7.0 (May 2009)," May 2009, 60 pages.
3GPP, TS 36.213, "Evolved Universal Terrestrial Radio Access (E-UTRA); Physical layer procedures (Release 11)," Oct. 2012, 145 pages.
3GPP, TS 36.808, "Evolved Universal Terrestrial Radio Access (E-UTRA); Carrier Aggregation (Release 10)", v10.0.0, Jun. 2012, 28 pages.
Abandonment, U.S. Appl. No. 13/475,598, filed Feb. 8, 2016, 1 page.
Abandonment, U.S. Appl. No. 14/086,700, filed Dec. 26, 2017, 2 pages.
Abbasi N., "Capacity estimation of HF-MIMO systems", International Conference on Ionospheric Systems and Techniques, 2009, 5 pages.
Adrian et al., "Quantum Tagging: Authenticating Location via Quantum Information and Relativistic Signalling Constraints,", Phys. Rev. A84, 012326 (2011), arXiv: 1008.2147, 2010, 9 pages.
Advisory Action for U.S. Appl. No. 12/802,989, filed May 4, 2017, 3 pages.
Advisory Action, U.S. Appl. No. 13/844,355, filed Jul. 17, 2019, 3 pages.
Advisory Action, U.S. Appl. No. 14/611,565, filed Feb. 7, 2020, 3 pages.
Advisory Office Action, U.S. Appl. No. 14/611,565, filed Nov. 10, 2020, 3 pages.
Aggarwal et al., "On the Design of Large Scale Wireless Systems," IEEE Journal of Selected Areas Communications, 2013, vol. 31. No. 2, pp. 215-225.
Airgo, "Homepage: Airgo—Wireless without Limits", Available Online at <http:www.airgonetworks.com>, printed on Apr. 9, 2004, 1 page.
Akbudak et al., "CoMP in Heterogeneous networks: A Low-Complexity Linear Transceiver Design," Workshop on Cooperative and Cognitive Mobile Networks, Communications (ICC), 2012 IEEE International Conference on, IEEE, Jun. 10, 2012, pp. 5624-5629.
Aktas et al., "Scaling Results on the Sum Capacity of Cellular Networks with MIMO Links", IEEE Transactions on Information Theory, 2006, vol. 52, pp. 3264-3274.
Akyildiz et al., "The Evolution to 4G Cellular Systems: LTE-Advanced," Physical Communication, vol. 3, 2010, pp. 217-244.
Alamouti et al., "A simple transmit diversity technique for wireless communications," IEEE Journal on Selected Areas in Communications, 1998, vol. 16, No. 8, pp. 1451-1458.
Allowance Receipt, MX App. No. MX/a/2019/010059, May 3, 2021, 3 pages (Original Document Only).
Alrabadi et al., "Beamforming via Large and Dense Antenna Arrays above a Clutter," Institute of Electrical and Electronics Engineers Journal on Selected Areas in Communications, 2013, vol. 31, No. 2, pp. 314-325.
Andersen et al., "The MIMO Cube—a Compact MIMO Antenna," IEEE Proceedings of Wireless Personal Multimedia Communications International Symposium, vol. 1, Oct. 2002, pp. 112-114.
Andersen J. B., "Antenna Arrays in Mobile Communications: Gain, diversity, and Channel Capacity.1," IEEE Antennas and Propagation Magazine, vol. 42, No. 2, Apr. 2000, pp. 12-16.
Anderson et al., "Beamforming in large-scale MIMO Multiuser Links Under a Per-node Power Constraint," Proceedings in International Symposium on Wireless Communication Systems, Aug. 2012, pp. 821-825.
Andrews et al., "Tripling the Capacity of Wireless Communications using Electromagnetic Polarization", Nature, vol. 409, Jan. 2001, pp. 316-318.
Andrews J. G., "Seven Ways That Hetnet are a Cellular Paradigm Shift," IEEE Communications Magazine, Mar. 2013, [online], Retrieved from the Internet: http://users.ece.utexas.edu/-jandrews/pubs/And HetNetCommMag2012v3.pdf, pp. 136-144.
Anritsu, "LTE resource guide", 18 pages, 2009, www.us.anritsu.com.
Araujo et al., "Channel Estimation for Millimeter-Wave Very-Large MIMO Systems," EUSPICO 2014, in proceedings, Sep. 1-5, 2014, 5 pages.
Arnau et al., "Dissection of Multibeam Satellite Communications with a Large-scale Antenna System Toolbox," European Wireless 2014 (EW2014), May 14-16, 2014, pp. 548-553.
ArrayComm, "Field-Proven Results," Improving wireless economics through MAS software, printed on Mar. 28, 2011, www.arraycomm.comserve.phppage=proof, 3 pages.
Artigue C., et al.,"On the Precoder Design of Flat Fading MIMO Systems Equipped with MMSE Receivers: A Large System Approach", IEEE Trans. Inform. Theory, 2011, vol. 57 (7), pp. 4138-4155.
AT&T, "1946: First Mobile Telephone Call" 1 page, Jun. 17, 1946, Available Online at <http:www.corp.att.comattlabsreputationtimeline46mobile.html>.
Baker M., "LTE-Advanced Physical Layer," Alcatel-Lucent, Dec. 2009, 48 pages.
Barbieri A., et al., "Coordinated Downlink Multi-point Communications in Heterogeneous Cellular Networks", (Qualcomm), Information Theory and App. Workshop, Feb. 2012, pp. 7-16.
BelAir Networks, "Small cells", Available Online at <URL:http:www.belairnetworks.comsitesdefaultfilesVVPSmallCells.pdf>, 2007 , 4 pages.
Benedetto et al., "Analysis of the effect of the I/Q baseband i-lter mismatch in an OFDM modem," Wireless personal communications, 2000, pp. 175-186.
Bengtsson E. L., "UE Antenna Properties and Their Influence on Massive MIMO System Performance," 2002, 5 pages.
Bengtsson, M., "A Pragmatic Approach to Multi-User Spatial Multiplexing", IEEE 2002, pp. 130-134.
Besson et al., "On parameter estimation of MIMO flat-fading channels with frequency offsets," IEEE Transactions on Transaction, Signal Processing, see also Acoustics, Speech, and Signal Processing, vol. 51, No. 3, 2003, pp. 602-613.
Bhagavatula R., et al., "Sizing up MIMO Arrays," IEEE Vehicular Technology Magazine, 2008, vol. 3 (4), pp. 31-38.
Bjornson et al., "Massive MIMO and Small Cells: Improving Energy Efficiency by Optimal Soft-Cell Coordination", ICT, 2013, Wireless Communications Symposium, pp. 5442-5447.
Bjornson et al., Designing Multi-User MIMO for Energy Efficiency: When is Massive MIMO the Answer?, IEEE Wireless Communications and Networking Conference (WCNC), Istanbul, Turkey, Apr. 2014, 6 pages.
Blelloch, "Introduction to Data Compression", Carnegie Mellon University Tech. Report, Sep. 2010, pp. 1-55.
Boche et al., "Analysis of Different Precoding decoding Strategies for Multiuser Beamforming", IEEE Vehicular Technology Conference, 2003, vol. 1, pp. 39-43.
Boche H., et al., "A General Duality Theory for Uplink and Downlink Beamforming", 2002, vol. 1, pp. 87-91.
Bourdoux et al., "Non-reciprocal transceivers in OFDM/SDMA systems: impact and mitigation", IEEE, 2003, pp. 183-186.
Brodersen et al., "Degrees of Freedom in Multiple Antenna Channels: A Signal Space Approach," IEEE Transactions on Information Theory, 2005, vol. 51, No. 2, pp. 523-536.
Bydon, "Silicon Valley Inventor's Radical Rewrite of Wireless", The Wall Street Journal, Retrieved on Jul. 28, 2011, Available Online at <http:biogs.wsj.comdigits20110728silicon-valley-inventors-radical-rewrite-of-wireless>, 2 pages.
Caire et al., "On the achievable throughput of a multiantenna Gaussian broadcast channel," IEEE Transactions on Information Theory, vol. 49, No. 7, Jul. 2003, pp. 1691-1706.
Caire et al., "On the Achievable Throughput of a Multiantenna Gaussian Broadcast Channel", IEEE Transactions on Information Theory, Jul. 23, 2001, vol. 49, pp. 1-46.
Caire, "On Achivable Rates in a Multi-Antenna Broadcast Downlink," IEEE Transactions on Information Theory, 2003, vol. 49, pp. 1691-1706.
Cannon et al., "Tomographical Imaging Using Uniformly Redundant Arrays,"Applied Optics, vol. 18 No. 7, 1979 pp. 1052-1057.
Catreux et al., "Adaptive Modulation and MIMO Coding for Broadband Wireless Data Networks," IEEE Communications Magazine, 2002, vol. 2, pp. 108-115.
Cerato et al., Hardware implementation of low-complexity detector for large MIMO, in Proc. IEEE ISCAS'2009, Taipei, May 2009, pp. 593-596.
Cetiner et al., "A Reconfigurable Spiral Antenna for Adaptive MIMO Systems," EURASIP Journal on Wireless Communications and Networking 2005:3, 382-389, plus International Journal of Digital Multimedia Broadcasting, Special Issue on: Audio Coding, Indexing, and Effects for Broadcasting Applications, Call for Papers Hindawi Publishing Corporation, http://www.hindawi.com, p. 1, and Special Issue on: Advances in 3DTV: Theory and Practice, Call for Papers Hindawi Publishing Corporation, http://www.hindawi.com, pp. 1.
Cetiner et al., "Multifunctional Reconfigurable MEMS Integrated Antennas for Adaptive MIMO Systems," Adaptive Antennas and MIMO Systems for Wireless Systems, IEEE Communications Magazine, vol. 42, No. 12, Dec. 2004, pp. 62-70.
Chae et al., "Adaptive MIMO Transmission Techniques for Broadband Wireless Communication Systems", IEEE Communications Magazine, 2010, vol. 48, No. 5, pp. 112-118.
Chae et al., "Coordinated Beamforming with Limited Feedback in the MIMO Broadcast Channel," Special Issue on Exploiting Limited Feedback in Tomorrow's Wireless Comm. Networks, IEEE Journal on Selected Areas in Communications, 2008, vol. 26, No. 8, pp. 1505-1515.
Chandrasekaran et al., "Near-Optimal Large-MIMO Detection Using Randomized MCMC and Randomized Search Algorithms," Proceeding in Institute of Electrical and Electronics Engineers International Conference on Communications, 2011, 5 pages.
Chapter 26—Electromagnetic-Wave Propagation, Reference Data for Radio Engineers, 5th Edition, Howard W. Sams & Co., Inc., 1973, pp. 1-32.
Chen et al., "Transmit selection diversity for unitary precoded multiuser spatial multiplexing systems with linear receivers", IEEE Trans. on Signal Processing, 2005, pp. 1-30.
Chen et al., "Transmit Selection Diversity for Unitary Precoded Multiuser Spatial Multiplexing Systems with Linear Receivers", IEEE Trans. on Signal Processing, 2007, vol. 55, No. 3, pp. 1159-1171.
Chen R., "Multiuser Space-Time Block Coded MIMO System with Downlink," IEEE Communications Society, 2004, pp. 2689-2693.
Chen, R., "Multiuser Space-Time Block Coded MIMO System with Downlink Precoding," IEEE Communications Society, 2004, pp. 2689-2693.
Chockalingam, A., "Low-Complexity Algorithms for Large-MIMO Detection," International Symposium on Communications, Control and Signal Processing, 2010, 6 pages.
Choi et al., "A transmit preprocessing technique for multiuser MIMO systems using a decomposition approach," IEEE Trans. Wireless Comm, 2004, vol. 3, No. 1, pp. 20-24.
Choi et al., "Downlink Training Techniques for FDD Massive MIMO Systems: Open-Loop and Closed-Loop Training with Memory," IEEE Journal of Selected Topics in Signal Processing on Signal Processing for Large-Scale MIMO Communications, 2013, 13 pages.
Choi et al., "Noncoherent Trellis Coded Quantization: A Practical Limited Feedback Technique for Massive MIMO Systems," Nov. 8, 2013, pp. 1-14.
Choi et al., "Opportunistic space division multiple access with beam selection," IEEE Trans. on Communications, 2006, pp. 1-23.
Choi J., et al., "Interpolation Based Transmit Beamforming for MIMO-OFDM with Limited Feedback," IEEE Transactions on Signal Processing, 2005, vol. 53 (11), pp. 4125-4135.
Choi J., et al., "Interpolation Based Unitary Precoding for Spatial Multiplexing MIMO-OFDM with Limited Feedback," Global Telecommunications Conference 2004 (GLOBECOM '04), IEEE, Dec. 3, 2004, pp. 214-218.
Chu et al., "Polyphase codes with good periodic correlation properties (corresp.)", IEEE Trans. Inform. Theory, vol. 18, No. 4, Jul. 1972, pp. 531-532.
Chuah C. N., et al., "Capacity Scaling in MIMO Wireless Systems under Correlated Fading", IEEE Trans. Inform. Theory, 2002, vol. 48 (3), pp. 637-650.
CMCC, "Discussion on CQI definition for non-PMI/RI reporting", 3GPP TSG-RAN WG1 #70, R1-123739, Aug. 13-17, 2012, 6 pages.
Cohn et al., "Group-theoretic Algorithms for Matrix Multiplication", IEEE Symposium on Foundations of Computer Science, 2005, pp. 379-388.
Communication pursuant to Article 94(3) EPC for Application No. EP13856705.2, dated Mar. 13, 2018, 6 pages.
Communication pursuant to Article 94(3) EPC for European Application No. 10156954, dated Jan. 25, 2017, 5 pages.
Communication pursuant to Article 94(3) EPC, EP App. No. 19189155.5, Apr. 9, 2021, 6 pages.
Coopersmith D., et al., "Matrix Multiplication via Arithmetic Progression", Journal of Symbolic Computation, 1990, vol. 9, pp. 251-280.
Coopersmith et al., "Matrix Multiplication via Arithmetic Progression", Journal of Symbolic Computation, 1990, vol. 9, pp. 251-280.
Corrected Notice of Allowability, U.S. Appl. No. 15/057,002, filed Jun. 3, 2019, 11 pages.
Corrected Notice of Allowability, U.S. Appl. No. 16/188,841, filed Oct. 28, 2020, 7 pages.
Corrected Notice of Allowability, U.S. Appl. No. 16/436,864, filed Jul. 22, 2020, 2 pages.
Corrected Notice of Allowance, U.S. Appl. No. 13/797,950, filed Nov. 13, 2018, 16 pages.
Corrected Notice of Allowance, U.S. Appl. No. 13/797,984, filed Apr. 5, 2018, 12 pages.
Corrected Notice of Allowance, U.S. Appl. No. 13/797,984, filed Feb. 8, 2018, 4 pages.
Corrected Notice of Allowance, U.S. Appl. No. 14/086,700, filed Nov. 8, 2018, 104 pages.
Corrected Notice of Allowance, U.S. Appl. No. 15/792,610, filed Oct. 6, 2020, 4 pages.
Couillet et al., "A Deterministic Equivalent for the Analysis of Correlated MIMO Multiple Access Channels," IEEE Trans. Inform. Theory, 2011, vol. 57, No. 6, pp. 3493-3514.
Coulson et al., "Maximum likelihood synchronization for OFDM using a pilot symbol: analysis," IEEE Journal on Selected Areas in Communications, 2001, vol. 19, No. 12, pp. 2495-2503.
Dahlman E., et al., "4G: LTE/LTE-Advanced for Mobile Broadband", Elsevier, 2011, Cover page, Title page, Copyright page, Table of Contents, 21 pages.
Dai et al., "Carrier frequency offset estimation for OFDM/SDMA systems using consecutive pilots," IEEE Proceedings Communications, 2005, vol. 152, pp. 624-632.
Dai et al., "Reduced-complexity performance-lossless (quasi-)maximum-likelihood detectors for S-QAM modulated MIMO systems," Electronics Letters, 2013, vol. 49, No. 11, pp. 724-725.
Dai et al., "Reducing the Complexity of Quasi-ML Detectors for MIMO Systems Through Simplified Branch Metric and Accumulated Branch Metric Based Detection," Communications Letters, 2013, vol. 17, No. 5, pp. 916-919.
Daniel, J., "Introduction to public safety: RF Signal Distribution Using Fiber Optics", Available Online at <http://www.rfsolutions.com/fiber.pdf>, 2009, 13 pages.
Datta et al., "A Hybrid RTS-BP Algorithm for Improved Detection of Large-MIMO M-QAM Signals," in Proc. IEEE National Conference on Communication, 2011, 6 pages.
Datta et al., "A Novel MCMC Based Receiver for Large-Scale Uplink Multiuser MIMO Systems," Jan. 2012, 37 pages.
Datta et al., "Random-Restart Reactive Tabu Search Algorithm for Detection in Large-MIMO Systems," IEEE Communications Letters, 2010, vol. 14, No. 12, pp. 1107-1109.
Debbah et al., "MIMO Channel Modelling and the Principle of Maximum Entropy," IEEE Transactions on Information Theory, 2005, vol. 51, No. 5, pp. 1667-1690.
Decision of Grant a Patent, JP App. No. 2016120928, Apr. 10, 2017, 6 pages.
Decision of Grant, JP Patent App. No. 2015-510498, Jun. 14, 2017, 6 pages.
Decision of Grant, RU App. No. 2014151216, Jan. 31, 2017, 18 pages.
Decision of Grant, RU App. No. 2016144927, Nov. 29, 2019, 8 pages of Original Document Only.
Decision of Refusal, JP App. No. 2016-562961, Oct. 28, 2020, 5 pages (4 pages of English Translation and 1 page of Original Document).
Decision of Refusal, JP App. No. 2019-093904, Feb. 7, 2022, 4 pages (2 pages of English Translation and 2 pages of Original Document).
Decision of Refusal, KR App. No. 2010-7006265, Apr. 23, 2015, 2 pages.
Decision of Refusal. JP App. No. 2014530763, Dec. 19, 2016, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Decision to grant a European patent, EP App. No. 10156950.7, May 8, 2020, 2 pages.
Decision to grant a European patent, EP App. No. 11838640.8, Feb. 7, 2019, 2 pages.
Decision to Grant a Patent, EP App. No. 13790935.4, Sep. 24, 2020, 2 pages.
Decision to Grant a Patent, JP App. No. 2017-082862, Dec. 10, 2018, 7 pages.
Decision to Grant a patent, JP App. No. 2017-110950, Nov. 15, 2017, 6 pages.
Decision to Grant, EP App. No. 14770916.6, May 28, 2021, 2 pages.
Degen et al., "Performance evaluation of MIMO systems using dual-polarized antennas," International Conference on Telecommunications, 2003, vol. 2, pp. 1520-1525.
Delfas N., "Mobile Data Wave: Who Dares to Invest, Wins," Morgan Stanley Research Global, Jun. 13, 2012, pp. 1-62.
Derrick et al., "Energy-Efficient Resource Allocation in OFDMA Systems with Large Numbers of Base Station Antennas", 2011, 30 pages.
Devasirvatham, et al., "Time Delay Spread Measurements At 850 MHz and 1 7 GHz Inside A Metropolitan Office Building", Electronics Letters, Feb. 2, 1989, vol. 25, No. 3, pp. 194-196.
Devasirvatham, et al., Radio Propagation Measurements At 850MHz. 1.7GHz and 4GHz Inside Two Dissimilar Office Buildings, Electronics Letter Mar. 29, 1990 vol. 26 No. 7, pp. 445-447.
Devasirvatham., "Time Delay Spread and Signal Level Measurements of 850 MHz Radio Waves in Building Environments," IEEE Transactions on Antennas and Propagation, 1986, vol. AP-34 (11), pp. 1300-1305.
Devillers et al., "Mutual coupling effects in multiuser massive MIMO base stations", IEEE Antennas and Propagation Society International Symposium (APSURSI), Jul. 2012, 2 pages.
Dietrich et al., "Spatial, polarization, and pattern diversity for wireless handheld terminals," Proc. IEEE Antennas and Prop. Symp, 2001, vol. 49, pp. 1271-1281.
Dighe et al., "Analysis of Transmit-Receive Diversity in Rayleigh Fading", IEEE Transactions on Communications, vol. 51, No. 4, Apr. 2003, pp. 694-703.
DigitalAir wireless, "GeoDesy Laser Links 1.25Gbps Full Duplex", Available Onlibne at <http:www.digitalairwireless.comoutdoor-wireless-networkspoint-to-point-wirelesslaser-fso-linksgeodesy-fso-laser-links.html> , Retreived on Oct. 2, 2015, 4 pages.
DigitalAir wireless, "Outdoor Wireless", Available Online at <URL: http:www.digitalairwireless.comoutdoor-wireless-networks.html>, Retreived on Sep. 29, 2015, 5 pages.
Ding et al., "On The Sum Rate Of Channel Subspace Feedback for Multi-Antenna Broadcast Channels," in Proc., IEEE Globecom, vol. 5, Nov. 2005, pp. 2699-2703.
Divisional Notification, CN App. No. 201710491990.7, Jul. 13, 2020, 4 pages (2 pages of English Translation and 2 pages of Original Document).
Dohler et al., "A Step towards MIMO: Virtual Antenna Arrays," European Cooperation in the Field of Scientific and Technical Research, 2003, 9 pages.
Dong et al., "Multiple-input multiple-output wireless communication systems using antenna pattern diversity," Proceedings of IEEE Globe Telecommunications Conference, 2002, vol. 1, pp. 997-1001.
Dumont J., et al. "On the Capacity Achieving Transmit Covariance Matrices for MIMO Rician Channels: An Asymptotic Approach," IEEE Transactions on Information Theory, 2010, vol. 56 (3), pp. 1048-1069.
Dupuy, et al., "On the Capacity Achieving Covariance Matrix for Frequency Selective MIMO Channels Using the Asymptotic Approach", IEEE Trans. Inform. Theory. 2010, pp. 2153-2157.
Dupuy, et al., On the Capacity Achieving Covariance Matrix for Frequency Selective MIMO Channels Using the Asymptotic Approach, IEEE Trans. Inform. Theory, 2011, vol. 57 (9), pp. 5737-5753.
Durgin, "Space-Time Wireless Channels", Prentice Hall Communications Engineering and Emerging Technologies Series, 2003, Upper Saddle River, NJ, Cover page, Title pages, Copyright page, Table of Contents, Preface, 16 pages, USA.
Eklund et al., "IEEE Standard 802.16: A Technical Overview of the WirelessMAN Air Interface for Broadband Wireless Access," IEEE Communications Magazine, Available Online at <http://ieee802.org/16/docs/02/C80216-02_05.pdf>, Jun. 2002, 12 pages.
Ekstrom et al., "Technical Solutions for the 3G Long-Term Evolution", IEEE Communications Magazine, 2006, pp. 38-45.
Erceg et al., "TGn Channel Models," IEEE 802.11-03940r4, May 2004, 45 pages.
Ericsson, The evolution of EDGE, Available Online at <http:www.ericsson.com/res/docs/whitepapersevolution_to_edge.pdf>, Feb. 2007, 18 pages.
ETSI Reconfigurable Radio Systems: Status and Future Directions on Software Defined Radio and Cognitive Radio Standards, IEEE Communications Magazine, IEEE Service Center, Sep. 2010, vol. 48, No. 9, pp. 78-86.
ETSI, "Mobile Technologies GSM", Available Online at <http://www.etsi.org/WebSite/Technologies/gsm.asp>, Retreived on Aug. 14, 2014, 2 pages.
European Application No. 24166023.2, Extended European Search Report mailed Jul. 19, 2024.
European Search Report and Search Opinion, EP App. No. 05254757.7, Sep. 13, 2005, 9 pages.
European Search Report and Search Opinion, EP App. No. 17844265.3, Feb. 21, 2020, 12 pages.
European Search Report and Search Opinion, EP App. No. 17864744.2, Aug. 14, 2020, 15 pages.
European Search Report, EP App. No. 10156954.9-2411, Sep. 2, 2010, 5 pages.
European Search Report, EP App. No. 19159810.1, Sep. 25, 2019, 8 pages.
Examination Report from counterpart AU Patent App. No. AU2014200745, Sep. 25, 2015, 3 pages.
Examination Report No. 1, AU App. No. 2012308632, Oct. 11, 2016, 3 pages.
Examination report No. 1, AU App. No. 2015214278, Jun. 5, 2018, 4 pages.
Examination report No. 1, AU App. No. 2015248161, Jul. 2, 2018, 5 pages.
Examination Report No. 1, AU App. No. 2019203120, Jul. 3, 2020, 4 pages.
Examination Report No. 1, AU App. No. 2020200070, Sep. 8, 2020, 4 pages.
Examination Report No. 2, AU App. No. 2012308632, Jun. 6, 2017, 5 pages.
Examination Report No. 2, NZ App. No. 761315, Aug. 5, 2020, 3 pages.
Examination Report No. 3, AU App. No. 2019200838, Aug. 4, 2020, 5 pages.
Examination report No. 4, AU App. No. 2013347803, Jan. 25, 2018, 6 pages.
Examination Report, AU App. No. 2016219662, Sep. 9, 2016, 2 pages.
Examination report, AU App. No. 2018241100, Sep. 27, 2019, 2 pages.
Examination Report, AU App. No. 2020201409, Apr. 16, 2021, 6 pages.
Examination report, Indian Patent App. No. 3496/CHENP/2013, Oct. 29, 2018, 7 pages.
Examination Report, NZ App. No. 622137, Dec. 21, 2016, 3 pages.
Examination Search Report, CA App. No. 2945987, Jan. 27, 2023, 3 pages.
Examiner Report, CA App. No. 2885817, Jul. 17, 2020, 5 pages.
Examiner's Report from counterpart AU Patent App. No. 2013256044, May 9, 2016, 2 pages.
Examiner's Report, CA App. No. 2539333, Dec. 4, 2012, 15 pages.
Examiner's Report, CA App. No. 28656772, Jan. 7, 2016, 3 pages.
Examiner's Report, CA App. No. 2892555, Sep. 15, 2020, 2 pages.
Examiner's Report, CA App. No. CA2695799, Apr. 1, 2015, 4 pages.
Extended European Search Report, EP App. No. 08798313.6, Nov. 14, 2012, 10 pages.
Extended European Search Report, EP App. No. 10156950.7, Nov. 6, 2012, 10 pages.
Extended European Search Report, EP App. No. 10184659.0, Nov. 29, 2012, 8 pages.
Extended European Search Report, EP App. No. 11838640.8, May 31, 2017, 15 pages.
Extended European Search Report, EP App. No. 18186156.8, Nov. 26, 2018, 7 pages.
Extended Search Report, EP App. No. 13843203.4, Feb. 15, 2016, 8 pages.
Extended Search Report, EP App. No. 13856705.2, Mar. 2, 2016, 10 pages.
Extended Search Report, EP App. No. 14770916.6, Jan. 24, 2017, 12 pages.
Extended Search Report, EP App. No. 14779084.4, Sep. 29, 2016, 8 pages.
Extended Search Report, EP App. No. 15746217.7, Jan. 22, 2018, 18 pages.
Extended Search Report, EP App. No. 15780522.7, Feb. 6, 2018, 13 pages.
Extended Search Report, EP App. No. EP13784690.3, Nov. 23, 2015, 4 pages.
Fakhereddin et al., "Combined effect of polarization diversity and mutual coupling on MIMO capacity," Proc. IEEE Antennas and Prop. Symp, 2003, vol. 2, pp. 495-498.
FCC, "Open commission meeting", Available Online at <http:reboot.fcc.govopen-meetings2010september>, Sep. 23, 2010, 3 pages.
FCC, Broadband action agenda, National Broadband Plan, Available Online at <http://www.broadband.gov/plan/national-broadband-plan-action-agenda.pdf>, 2010, pp. 1-8.
Federal Communications Commission, "Authorization of Spread Spectrum Systems under Parts 15 and 90 of the FCC Rules and Regulations", Jun. 1985, 18 pages.
Federal Communications Commission, "Evaluating Compliance with FCC Guidelines for Human Exposure to Radiofrequency Electromagnetic Fields," OET Bulletin 65, Ed. 97-01, Aug. 1997, 84 pages.
Fella Adlane, "Adaptive WiMAX Antennas: The promise of higher ROI," Available Online at <http:www.wimax.comcommentaryspotlightspotlight8-08-2005searchterm=Adlane Fella>, Printed on May 9, 2008, pp. 1-3.
Feng et al., "Self-organizing networks (SON) in 3GPP LTE", Nom or Research, May 2008, pp. 1-15.
Final Office Action with partial English translation, JP Patent App. No. 2005223345, Feb. 18, 2014, 23 pages.
Final Office Action, JP App. No. 2005-223345, May 12, 2011, 12 pages.
Final Office Action, U.S. Appl. No. 10/817,731, filed Jul. 9, 2008, 21 pages.
Final Office Action, U.S. Appl. No. 10/817,731, filed Sep. 11, 2009, 36 pages.
Final Office Action, U.S. Appl. No. 12/630,627, filed Apr. 2, 2013, 23 pages.
Final Office Action, U.S. Appl. No. 12/630,627, filed Oct. 20, 2011, 13 pages.
Final Office Action, U.S. Appl. No. 12/802,958, filed Apr. 15, 2015, 24 pages.
Final Office Action, U.S. Appl. No. 12/802,958, filed Apr. 29, 2016, 33 pages.
Final Office Action, U.S. Appl. No. 12/802,958, filed Jun. 25, 2013, 48 pages.
Final Office Action, U.S. Appl. No. 12/802,958, filed Jun. 7, 2017, 18 pages.
Final Office Action, U.S. Appl. No. 12/802,974, filed Aug. 1, 2014, 23 pages.
Final Office Action, U.S. Appl. No. 12/802,974, filed Nov. 30, 2015, 22 pages.
Final Office Action, U.S. Appl. No. 12/802,975, filed Aug. 4, 2014, 40 pages.
Final Office Action, U.S. Appl. No. 12/802,975, filed Dec. 14, 2015, 26 pages.
Final Office Action, U.S. Appl. No. 12/802,975, filed Dec. 22, 2016, 29 pages.
Final Office Action, U.S. Appl. No. 12/802,975, filed Jun. 22, 2018, 27 pages.
Final Office Action, U.S. Appl. No. 12/802,975, filed Oct. 18, 2019, 21 pages.
Final Office Action, U.S. Appl. No. 12/802,988, filed Aug. 2, 2013, 13 pages.
Final Office Action, U.S. Appl. No. 12/802,988, filed Feb. 8, 2017, 13 pages.
Final Office Action, U.S. Appl. No. 12/802,988, filed Jan. 13, 2016, 11 pages.
Final Office Action, U.S. Appl. No. 12/802,988, filed Jan. 22, 2018, 11 pages.
Final Office Action, U.S. Appl. No. 12/802,988, filed Oct. 21, 2014, 13 pages.
Final Office Action, U.S. Appl. No. 12/802,988, filed Sep. 5, 2012, 8 pages.
Final Office Action, U.S. Appl. No. 12/802,989, filed Aug. 25, 2015, 24 pages.
Final Office Action, U.S. Appl. No. 12/802,989, filed Jun. 12, 2014, 17 pages.
Final Office Action, U.S. Appl. No. 12/802,989, filed Nov. 2, 2016, 14 pages.
Final Office Action, U.S. Appl. No. 12/802,989, filed Nov. 27, 2012, 12 pages.
Final Office Action, U.S. Appl. No. 13/232,996, filed Apr. 11, 2017, 149 pages.
Final Office Action, U.S. Appl. No. 13/232,996, filed Jul. 31, 2013, 12 pages.
Final Office Action, U.S. Appl. No. 13/232,996, filed Mar. 21, 2018, 20 pages.
Final Office Action, U.S. Appl. No. 13/232,996, filed Nov. 12, 2015, 14 pages.
Final Office Action, U.S. Appl. No. 13/232,996, filed Oct. 23, 2014, 15 pages.
Final Office Action, U.S. Appl. No. 13/233,006, filed Dec. 19, 2017, 114 pages.
Final Office Action, U.S. Appl. No. 13/233,006, filed Feb. 18, 2014, 18 pages.
Final Office Action, U.S. Appl. No. 13/233,006, filed Nov. 13, 2018, 9 pages.
Final Office Action, U.S. Appl. No. 13/233,006, filed Nov. 5, 2015, 10 pages.
Final Office Action, U.S. Appl. No. 13/233,006, filed Oct. 12, 2016, 10 pages.
Final Office Action, U.S. Appl. No. 13/464,648, filed Aug. 1, 2013, 10 pages.
Final Office Action, U.S. Appl. No. 13/475,598, filed Aug. 27, 2014, 30 pages.
Final Office Action, U.S. Appl. No. 13/797,950, filed Aug. 24, 2017, 74 pages.
Final Office Action, U.S. Appl. No. 13/797,950, filed Feb. 2, 2016, 65 pages.
Final Office Action, U.S. Appl. No. 13/797,971, filed Oct. 9, 2015, 52 pages.
Final Office Action, U.S. Appl. No. 13/797,984, filed Aug. 20, 2015, 15 pages.
Final Office Action, U.S. Appl. No. 13/797,984, filed Sep. 29, 2016, 13 pages.
Final Office Action, U.S. Appl. No. 13/844,355, filed Aug. 12, 2015, 20 pages.
Final Office Action, U.S. Appl. No. 13/844,355, filed Dec. 15, 2016, 23 pages.
Final Office Action, U.S. Appl. No. 13/844,355, filed Feb. 21, 2019, 34 pages.
Final Office Action, U.S. Appl. No. 13/844,355, filed Feb. 7, 2018, 24 pages.
Final Office Action, U.S. Appl. No. 13/844,355, filed Jun. 3, 2019, 26 pages.
Final Office Action, U.S. Appl. No. 14/023,302, filed Mar. 2, 2015, 5 pages.
Final Office Action, U.S. Appl. No. 14/086,700, filed Oct. 14, 2016, 11 pages.
Final Office Action, U.S. Appl. No. 14/086,700, filed Sep. 2, 2015, 9 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed Dec. 4, 2019, 19 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed Jul. 12, 2022, 12 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed Jun. 16, 2016, 22 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed May 10, 2021, 7 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed Oct. 25, 2017, 25 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed Oct. 25, 2018, 20 pages.
Final Office Action, U.S. Appl. No. 14/611,565, filed Sep. 3, 2020, 7 pages.
Final Office Action, U.S. Appl. No. 14/672,014, filed Oct. 16, 2017, 9 pages.
Final Office Action, U.S. Appl. No. 14/672,014, filed Oct. 2, 2019, 10 pages.
Final Office Action, U.S. Appl. No. 15/057,002, filed Jul. 16, 2018, 13 pages.
Final Office Action, U.S. Appl. No. 15/181,383, filed Jan. 11, 2018, 8 pages.
Final Office Action, U.S. Appl. No. 15/340,914, filed Jan. 3, 2019, 67 pages.
Final Office Action, U.S. Appl. No. 15/682,076, filed Oct. 30, 2019, 26 pages.
Final Office Action, U.S. Appl. No. 15/792,610, filed Dec. 16, 2019, 8 pages.
Final Office Action, U.S. Appl. No. 16/188,841, filed Jul. 7, 2020, 17 pages.
Final Office Action, U.S. Appl. No. 16/208,895, filed Apr. 6, 2021, 8 pages.
Final Office Action, U.S. Appl. No. 16/208,895, filed Jul. 28, 2022, 5 pages.
Final Office Action, U.S. Appl. No. 17/317,856, filed Aug. 20, 2021, 33 pages.
Final Office Action, U.S. Appl. No. 17/498,666, filed Apr. 22, 2022, 17 pages.
First Exam Report, New Zealand App. No. 701567, Feb. 3, 2016, 4 pages.
First Exam Report, New Zealand Patent App. No. 717370, Apr. 8, 2016, 2 pages.
First Examination Report from counterpart AU Patent App. No. 2011323559, Oct. 12, 2015, 3 pages.
First Examination Report, AU App. No. 2018253582, Jun. 3, 2019, 3 pages.
First Examination Report, AU Patent App. No. 2014248533, Mar. 1, 2017, 5 pages.
First Examination Report, AU Patent App. No. 2020256510, Aug. 10, 2015, 3 pages.
First Examination Report, AU Patent App. No. AU2017245425, May 9, 2018, 9 pages.
First Examination Report, New Zealand App. No. 729017, Jun. 30, 2017, 3 pages.
First Examination Report, New Zealand App. No. 742186, Jun. 28, 2018, 4 pages.
First Examination Report, New Zealand App. No. 743604, Jul. 10, 2018, 5 pages.
First Examination Report, New Zealand Patent App. No. 728719, May 31, 2017, 4 pages.
First Examination Report, NZ App. No. 622137, Aug. 28, 2014, 2 pages.
First Examination Report, NZ App. No. 701691, Feb. 10, 2016, 4 pages.
First Examination Report, NZ App. No. 751530, Oct. 18, 2019, 3 pages.
First Examination Report, NZ App. No. 757995, Nov. 1, 2019, 2 pages.
First Examination Report,, AU Patent App. No. AU2011323559, Sep. 30, 2015, 3 pages.
First Office Action and Search report, Chinese Patent App. No. 201380026522.2, Mar. 27, 2017, 20 pages.
First Office Action and Search Report, Chinese Patent App. No. 201480016091.6, Apr. 25, 2018, 17 pages.
First Office Action and Search Report, CN App. No. 201210466082.X, Apr. 3, 2015, 26 pages.
First Office Action and Search Report, CN App. No. 201580007666.2, Jan. 11, 2019, 13 pages.
First Office Action and Search Report, CN App. No. 201580019760.X, Jun. 5, 2019, 12 pages (6 pages of English Translation and 6 pages of Original Document).
First Office Action and Search Report, TW App. No. 100139880, Feb. 26, 2016, 27 pages.
First Office Action Report, Chinese Patent App. No. 201310407419.4, Nov. 20, 2015, 8 pages.
First Office Action, EP Patent App. No. 10784126.4, Dec. 17, 2015, 7 pages.
First Office Action, EP Patent App. No. 12762167.0, Jan. 4, 2016, 4 pages.
First Office Action, EP Patent App. No. 201380035543.0, Feb. 15, 2016, 8 pages.
First Office Action, JP Patent App. No. JP2014264325, Nov. 12, 2015, 4 pages.
First Office Action, KR Patent App. No. 10-2015-7033311, Feb. 16, 2016, 12 pages.
First Office Action, MX Patent App. No. MX/a/2014/002900, Apr. 24, 2015, 3 pages.
First Office Action, MX Patent App. No. MXa2014013795, Nov. 1, 2016, 3 pages.
First Office Action, MX Patent App. No. MXa2014013795, Oct. 30, 2015, 7 pages.
First Office Action, RU Patent App. No. 2011131821, Jun. 26, 2015, 8 pages.
First Office Action, TW Patent App. No. 102117728, Aug. 9, 2016, 11 pages.
Fletcher et al., "Mutual coupling in multi-element array antennas and its influence on MIMO channel capacity," IEEE Electronics Letters, 2003, vol. 39 (4), pp. 342-344.
Florian Kaltenberger, et al., www.FutureNetworkSummit.eu/2010, Relative Channel Reciprocity Calibration in MIMO/TDD Systems (2010), 10 pages.
Florian Kaltenberger, et al., www.FutureNetworkSummit.eu/2010, Relative Channel Reciprocity Calibration in MIMO/TDD Systems (2010), 11 pages.
Forenza A., et al., "Impact of antenna geometry on MIMO communication in indoor clustered channels," Proc. IEEE Antennas and Prop. Symp, 2004, vol. 2, pp. 1700-1703.
Forenza et al., "Adaptive MIMO Transmission for Exploiting the Capacity of Spatially Correlated Channels," IEEE Trans. on Veh. Tech, 2007, vol. 56, No. 2, pp. 619-630.
Forenza et al., "Adaptive MIMO transmission scheme: Exploiting the spatial selectivity of wireless channels", Proceedings Institute of Electrical and Electronics Engineers Vehicular Technology Conference, 2005, vol. 5, pp. 3188-3192.
Forenza et al., "Benefit of Pattern Diversity Via 2-element Array of Circular Patch Antennas in Indoor Clustered MIMO Channels", IEEE Trans. on Communications, vol. 54, No. 5, May 2006, pp. 943-954.
Forenza et al., "Link Adaptation and Channel Prediction in Wireless OFDM Systems," Proceeding of IEEE International Midwest Symposium on Circuits and Systems, 2002, pp. 211-214.
Forenza et al., "Optimization Methodology for Designing 2-CPAs Exploiting Pattern Diversity in Clustered MIMO Channels", Institute of Electrical and Electronics Engineers Transactions on Communications, 2008, vol. 56, No. 10, pp. 1748-1759.
Forenza et al., "Switching Between OSTBC and Spatial Multiplexing with Linear Receivers in Spatially Correlated MIMO Channels", IEEE, 2006, pp. 1-5.
Foschin et al., "Coordinating multiple antenna cellular networks to achieve enormous spectral efficiency", Proceedings of the IEEE, Aug. 2006, vol. 153, No. 4, pp. 548-555.
Foschini et al., "Simplified processing for high spectral efficiency wireless communication employing multi-element arrays", IEEE Jour. Select. Areas in Comm., vol. 17, No. 11, Nov. 1999, pp. 1841-1852.
Foschini et al., "The Value of Coherent Base Station Coordination", Conference on In-formation Sciences and Systems (CISS 2005), Mar. 16-18, 2005, 6 pages.
Fourth Office Action, CN App. No. 201480016091.6, Dec. 10, 2019, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Further Examination Report (Postponed Acceptance), New Zealand Patent App. No. 728719, Jan. 31, 2018, 2 pages.
Further Examination Report, New Zealand App. No. 701567, Aug. 24, 2016, 6 pages.
Further Examination Report, New Zealand App. No. 701691, Sep. 26, 2016, 3 pages.
Further Examination Report, New Zealand Patent App. No. 717370, Aug. 3, 2017, 4 pages.
Fusco et al., "Blind Frequency-offset Estimation for OFDM/OQAM Systems," IEEE Transactions on [see also Acoustics, Speech, and Signal Processing, IEEE Transactions on], 2007, vol. 55, pp. 1828-1838.
Gao et al., "Linear Pre-Coding Performance in Measured Very-Large MIMO Channels," IEEE Vehicular Technology, 2011, pp. 1-5.
Garcia et al., "Channel Model for Train to Train Communication Using the 400 MHz Band", in Proc. Of IEEE Vehicular Technology Conference, May 2008, pp. 3082-3086.
Gesbert et al., "From Theory to Practice: An Overview of MIMO Space—Time Coded Wireless Systems," IEEE Journal on Selected Areas in Communications, 2003, vol. 21, No. 3, pp. 281-302.
Gesbert et al., "Multi-Cell MIMO Cooperative Networks: A New Look at Interference," IEEE Journal on Selected Areas in Communications, Dec. 2010, vol. 28, No. 9, pp. 1380-1408.
Gesbert et al., "Outdoor MIMO Wireless Channels: Models and Performance Prediction", IEEE Transactions on Communications, vol. 50, No. 12, Dec. 2002, pp. 1926-1934.
Ghogho et al., "Training design for multipath channel and frequency offset estimation in MIMO systems", Signal Processing, IEEE Transactions on [see also Acoustics, Speech, and Signal Processing, IEEE Transactions on], vol. 54, No. 10, Oct. 2006, pp. 3957-3965.
Glazunov et al., "Experimental Characterization of the Propagation Channel along a Very Large Virtual Array in a Reverberation Chamber", Progress In Electromagnetics Research B, Jan. 2014, vol. 59, pp. 205-217.
Goldman D., "Sorry, America: Your Wireless Airwaves are Full", CNN Money, Available Online at <http://money.cnn.com/2012/02/21/technology/spectrum crunch/index.html>, 2012, 3 pages.
Gopalakrishnan et al., "An Analysis of Pilot Contamination on Multi-User MIMO Cellular Systems with Many Antennas," Proceedings in Signal Processing Advances in Wireless Communications, 2011, pp. 381-385.
Govindasamy et al., "Asymptotic Spectral Efficiency of the Uplink in Spatially Distributed Wireless Networks with Multi-Antenna Base Stations," IEEE Transactions on Communications, 2013, vol. 61, No. 7, 100 pages.
GSMA, "GSM technology" Printed on Aug. 14, 2014, Available Online at <http://www.gsmworld.com/technology/index.htm>, 1 page.
Guey et al., "Modeling and Evaluation of MIMO Systems Exploiting Channel Reciprocity in TDD Mode," VTC 2004—Fall, IEEE 60th, Oct. 2004, pp. 4265-4269.
Guillaud et al., "A Practical Method for Wireless Channel Reciprocity Exploitation Through Relative Calibration", IEEE Proceedings Of Sign Processing, Aug. 2005, vol. 1, pp. 403-406.
Guillaud et al., "A Specular Approach to MIMO Frequency selective Channel Tracking and Prediction," Fifth IEEE Workshop on Signal Processing Advances in Wireless Communications, Jul. 11-14, 2004, pp. 59-63.
Gunashekar G., "Investigations into the Feasibility of MIMO Techniques within the HF Band: Preliminary Results," Radio Science, 2009, 33 pages.
Guthy et al., "Large System Analysis of Projection Based Algorithms for the MIMO Broadcast Channel", in Proc. of the IEEE Intl Symp. Inform. Theory, Austin, U.S.A., Jun. 2010, 5 pages.
Guthy et al., "Large System Analysis of Sum Capacity in the Gaussian MIMO Broadcast Channel", IEEE J. Sel. Areas Communication, 2013, vol. 31, No. 2, pp. 149-159.
Guthy et al., "Large System Analysis of the Successive Encoding Successive Allocation Method for the MIMO BC", Proc. of the International ITG Workshop on Smart Antennas, Bremen, Germany, Feb. 2010.
Hachem et al., "A New Approach for Mutual Information Analysis of Large Dimensional Multi-Antenna Channels," IEEE Transactions on Information Theory, 2008, vol. 54, No. 9, pp. 3987-4004.
Hakkarainen et al., "Widely-Linear Beamforming and RF Impairment Suppression in Massive Antenna Arrays", Journal of Communications and Networks, 2013, vol. 15, No. 4, pp. 383-397.
Hallen H., "Long-Range Prediction of Fading Signals", Institute of Electrical and Electronics Engineers Signal Processing Magazine, 2000, vol. 17, No. 3, pp. 62-75.
Haring, L. , "Residual carrier and sampling frequency synchronization in multiuser OFDM systems", VTC—Spring. IEEE 63rd Vehicular Technology Conference, vol. 4, 2006, pp. 1937-1941.
Hazlett et al., "Radio Spectrum for a Hungry Wireless World", Sep. 22, 2011, 41 pages.
Heath et al., "Antenna selection for spatial multiplexing systems with linear receivers," IEEE Trans. Comm, 2001, vol. 5, pp. 142-144.
Heath et al., "Switching between diversity and multiplexing in MIMO systems", IEEE Trans. Comm., vol. 53, No. 6, Jun. 2005, pp. 962-968.
Heath et al., "Switching between Multiplexing and Diversity Based on Constellation Distance," Proc. of Allerton Conf on 208, Comm. Control and Comp, Oct. 4-6, 2000, pp. 212-221.
Heath Ret al., "Exploiting Limited Feedback in Tomorrow's Wireless Communication Networks," IEEE Journal on Sel. Areas in Comm., Special Issue onExploiting Limited Feedback in Tomorrow's Wireless Communication Networks, 2008, vol. 26, No. 8, pp. 1337-1340.
Hewlett Packard, "GPS and Precision Timing Applications", Application Note 1272, May 1996, pp. 1-28.
High Frequency Active Auroroal Research Program—Homepage, Available Online at <http:www.haarp.alaska.edu>, Printed on Apr. 9, 2004, 1 page.
Hochwald et al., "A Vector-Perturbation Technique for Near-Capacity Multiantenna Multiuser Communication—Part I: Channel Inversion and Regularization", Institute of Electrical and Electronics Engineers Transactions on Communications, 2005, vol. 53, No. 1, pp. 195-202.
Hochwald et al., "A Vector-Perturbation Technique for Near-Capacity Multiantenna Multiuser Communication—Part II: Perturbation", Institute of Electrical and Electronics Engineers Transactions on Communications, 2005, vol. 53, No. 3, pp. 537-544.
Hochwald et al., "Multi-Antenna Channel Hardening and its Implications for Rate Feedback and Scheduling", Institute of Electrical and Electronics Engineers Transactions on Information Theory, 2004, vol. 50, No. 9, pp. 1893-1909.
Hong et al. "Joint Base Station Clustering and Beamformer Design for Partial Coordinated Transmission in Heterogenous Networks," IEEE Journal on Selected Areas in Communications, 2013, vol. 31, No. 2, pp. 226-240.
Hosseini et al., "Massive MIMO and Small Cells: How to Densify Heterogeneous Networks," Wireless Communications Symposium, IEEE ICC, 2013, pp. 5442-5447.
Hoydis et al., "Iterative Deterministic Equivalents for the Performance Analysis of Communication Systems," Dec. 18, 2011, pp. 1-43.
Huang et al., "Joint Beamforming and Power Control in Coordinated Multicell: Max-Min Duality, Effective Network and Large System Transition," IEEE Transactions on Wireless Communications, 2013, pp. 1-14.
Huawei, et al., "CoMP Clarification of definitions and TP," R1-084351, Nov. 10-14, 2008, 3GPP TSG RAN WG1 Meeting #55, 7 pages.
Huff et al., "A Novel Radiation Pattern and Frequency Reconfigurable Single Turn Square Spiral Microstrip Antenna", IEEE Microwave and Wireless Components Letters, vol. 13, No. 2, Feb. 2003, pp. 57-59.
Huh et al., Multi-cell MIMO Downlink with Cell Cooperation and Fair Scheduling: A Large-System Limit Analysis, IEEE Transactions on Information Theory, 2011, vol. 57, No. 12, pp. 7771-7786.
Huh H., et al., Achieving "Massive MIMO" Spectral Efficiency with a Not-so-Large Number of Antennas. IEEE Transactions on Wireless Communications, Sep. 2012, vol. 11 (9), pp. 3226-3239.
IEEE 802.22, "IEEE 802.22 Working Group on Wireless Regional Area Networks", Retrieved on Aug. 14, 2014, Available Online at <http:www.ieee802.org/22/>, 1 page.
IntelliCell: A Fully Adaptive Approach to Smart Antennas, ArrayComm, Incorporated, WP-ISA-031502-2.0, 2002, pp. 1-18.
Intention to Grant, EP App. No. 13790935.4, Jun. 24, 2020, 8 pages.
Intention to Grant, EP App. No. 14770916.6, Apr. 28, 2021, 8 pages.
International Preliminary Report On Patentability and Written Opinion, App. No. PCT/US2013/071749, Jun. 4, 2015, 7 pages.
International Preliminary Report On Patentability and Written Opinion, App. No. PCT/US2014/025102, Sep. 24, 2015, 10 pages.
International Preliminary Report On Patentability and Written Opinion, App. No. PCT/US2014/025108, Sep. 24, 2015, 8 pages.
International Preliminary Report On Patentability and Written Opinion, App. No. PCT/US2014/025123, Sep. 24, 2015, 10 pages.
International Preliminary Report on Patentability and Written Opinion, App. No. PCT/US2015/014511, Aug. 18, 2016, 5 pages.
International Preliminary Report On Patentability from foreign counterpart PCT/US2013/061493, Apr. 16, 2015, 7 pages.
International Preliminary Report on Patentability, App. No. PCT/US11/58663, May 7, 2013, 26 pages.
International Preliminary Report on Patentability, App. No. PCT/US2012/054937, Mar. 27, 2014, 13 pages.
International Preliminary Report on Patentability, App. No. PCT/US2013/039580, Nov. 4, 2014, 7 pages.
International Preliminary Report on Patentability, App. No. PCT/US2013/041726, Nov. 18, 2014, 6 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US06/41009, Apr. 23, 2008, 4 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US2005/11033, Jun. 3, 2008, 7 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US2008/073780, Feb. 24, 2010, 10 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US2015/023436, Oct. 27, 2016, 6 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US2017/047963, Mar. 7, 2019, 8 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US2017/058291, May 9, 2019, 7 pages.
International Preliminary Report on Patentability, PCT App. No. PCT/US2021/026431, Oct. 20, 2022, 5 pages.
International Search Report and the Written Opinion, App. No. PCT/US15/14511, May 18, 2015, 7 pages.
International Search Report and the Written Opinion, App. No. PCT/US2013/061493, Dec. 6, 2013, 9 pages.
International Search Report and Written Opinion, App. No. PCT/US13/41726, Jul. 16, 2013, 7 pages.
International Search Report and Written Opinion, App. No. PCT/US2012/054937, Apr. 2, 2013, 17 pages.
International Search Report and Written Opinion, App. No. PCT/US2013/039580, Aug. 20, 2013, 12 pages.
International Search Report and Written opinion, App. No. PCT/US2013/071749, Apr. 8, 2014, 9 pages.
International Search Report and Written opinion, App. No. PCT/US2014/025102, Jul. 18, 2014, 11 pages.
International Search Report and Written opinion, App. No. PCT/US2014/025105, Jul. 14, 2014, 12 pages.
International Search Report and Written Opinion, App. No. PCT/US2014/025108, Sep. 19, 2014, 10 Pages.
International Search Report and Written opinion, App. No. PCT/US2014/025123, Jul. 18, 2014, 11 pages.
International Search Report and Written Opinion, App. No. PCT/US2015/023436, Aug. 19, 2015, 10 pages.
International Search Report and Written Opinion, App. No. PCT/US2017/047963, Nov. 3, 2017, 9 pages.
International Search Report and Written Opinion, App. No. PCT/US2017/058291, Mar. 8, 2018, 12 pages.
International Search Report and Written Opinion, PCT App. No. PCT/US 06/41009, May 24, 2007, 6 pages.
International Search Report and Written opinion, PCT App. No. PCT/US05/11033, May 2, 2008, 10 pages.
International Search Report and Written Opinion, PCT App. No. PCT/US11/58663, Mar. 29, 2012, 27 pages.
International Search Report and Written Opinion, PCT App. No. PCT/US2008/073780, Nov. 19, 2008.
International Search Report and Written Opinion, PCT App. No. PCT/US2021/026431, Jun. 29, 2021, 6 pages.
ITU, "ISM Band," Available Online at <http://www.itu.int/ITUR/ terrestrial/faq/index.html#g013>, Aug. 14, 2014, pp. 1-8.
J. Duplicity, et al., "MU-MIMO in LTE systems", EURASIP Journal on Wireless Communications and Networking, Mar. 2011, 10 pages.
J. G. Proakis, Communication System Engineering, Prentice Hall, 1994, 11 pages.
Jafar et al., "Channel Capacity and Beamforming for Multiple Transmit and Receive Antennas with Covariance Feedback," Proc. IEEE Int. Cont. on Comm, Jun. 2001, vol. 7, pp. 2266-2270.
Jafar et al., "Transmitter Optimization and Optimality of Beamforming for Multiple Antenna Systems," IEEE Trans Wireless Comm, Jul. 2004, vol. 3, No. 4, pp. 1165-1175.
Jakes W. C., Microwave Mobile Communications, IEEE Press, 1974, Table of Contents, 4 pages.
Jindal N., et al., "Dirty Paper Coding vs. TDMA for MIMO Broadcast Channels", IEEE Trans. on Information Theory, vol. 51, May 2005, pp. 1783-1794.
Jindal, N , "MIMO Broadcast Channels With Finite-Rate Feedback," IEEE Trans. on Info. Theory, vol. 52, pp. 5045-5060, Nov. 2006.
Jing J., et al. "A Downlink Max-SINR Precoding for Massive MIMO System," International Journal of Future Generation Communication and Networking, Jun. 2014, vol. 7 (3), pp. 107-116.
Jorswieck et al., "Channel Capacity and Capacity-Range of Beamforming in MIMO Wireless Systems under Correlated Fading with Covariance Feedback," IEEE Transactions on Wireless Communications, Sep. 2004, vol. 3, pp. 1543-1553.
Jose et al. "Pilot Contamination and Precoding in Multi-cell TDD Systems," IEEE Transactions on Wireless Communications, 2011, vol. 10, No. 8, pp. 2640-2651.
Jose J., "Channel Estimation and Linear Precoding in Multiuser Multiple-Antenna TDD Systems," IEEE Transactions on Vehicular Technology, 2011, vol. 60, No. 5, pp. 2102-2116.
Jungnickel et al., "Capacity of MIMO systems with closely spaced antennas", IEEE Comm. Lett., vol. 7, Aug. 2003, pp. 361-363.
Kamata et. al, "Effects of IQ Imbalance and an Effective Compensation Scheme in the MIMO-OFDM Communication System," Proceedings of the 2005 Institute of Electronics, Information and Communication General Conference, Mar. 7, 2005, B-5-90, 5 pages.
Kang et al., "Water-Filling Capacity and Beamforming Performance of MIMO Systems With Covariance Feedback," IEEE Workshop on Signal Processing Advances in Wireless Communications, Jun. 2003, pp. 556-560.
Kannan et al., "Separation of cochannel signals under imperfect timing and carrier synchronization", IEEE Trans. Veh. Technol., vol. 50, No. 1, Jan. 2001, pp. 79-96.
Karakayali et al. "Network Coordination for Spectrally Efficient Communications in Cellular Systems," IEEE Wireless Communications Magazine, 2006, vol. 13, No. 4, pp. 56-61.
Karakayali et al., "On the Maximum Common Rate Achievable in a Coordinated Network," Proceedings of the International Conference on Communications (ICC'06), Mar. 3, 2006, vol. 9, pp. 1-6.
Kayama et al., "Demodulation Reference Signal Design and Channel Estimation for LTE-Advanced Uplink," Advances in Vehicular Networking Technologies, 2011, pp. 418-432.
Kellerman F. C., "LDPC OFDM Space-Time Multipath Fading Channel Results," Proceedings SPIE , Digital Wireless Communications, XP-002672064, 2003, vol. 5100, pp. 19-30.
Kent, Adrian, et al, "Quantum Tagging: Authenticating Location via Quantum Information and Relativistic Signaling Constraints". 2010, 9 pages. Phys. Rev. A84, 012326 (2011), DOI: 10.1103/PhysRevA.84.012326, arXiv:1008.2147.
Kermoal et al., "A Stochastic MIMO Radio Channel Model With Experimental Validation," IEEE Journal On Selected Areas In Communications, 2002, vol. 20, No. 6, pp. 1211-1226.
Khaled N., et al., "Interpolation Based Multi-Mode Precoding for MIMO-OFDM Systems with Limited Feedback," IEEE Transactions on Wireless Communications, vol. 6 (3), Mar. 2007, pp. 1003-1013.
Knievel C, "Low Complexity Receiver for Large-MIMO Space Time Coded Systems", in Proc. IEEE VTC—Fall'2011, Sep. 2011, 5 pages.
Knievel C., et al., "On Particle Swarm Optimization for MIMO Channel Estimation", Article ID 614384, Journal of Electrical and Computer Engineering, 2012, vol. 2012, 10 pages.
Kouassi B. et al., "Reciprocity-Based Cognitive Transmissions using a MU Massive MIMO Approach", 2013, pp. 1331-1335.
Kountouris M., et al., "HetNets and Massive MIMO: Modeling, Potential Gains, and Performance Analysis," in Proc. IEEE-APS Topical Conference on Antennas and Propagation in Wireless Communications, Sep. 2013, 5 pages.
Krim et al., "Two Decades of Array Signal Processing Research," IEEE Signal Proceedings Magazine, 1996, pp. 67-94.
Krishnan et al., "Cellular Systems with Many Antennas: Large System Analysis under Pilot Contamination," in Proceedings of the 50th Annual Allerton Conference on Communication, Control, and Computing, 2012, pp. 1220-1224.
Kumagawa et al., "A Study of Introducing Distributed Transmit Power Control to Distributed Antenna System," 2011, 30 pages.
Kumar et al. "Asymptotic Performance of Linear Receivers in MIMO Fading Channels", IEEE Information Theory Workshop, Feb. 19, 2009, 48 pages.
Lang et al., "Design and development of a 5.25 GHz software defined wireless OFDM communication platform", IEEE Communications Magazine, vol. 42, No. 6, Jun. 2004, pp. 6-12.
Lee et al., "Coordinated Multipoint Transmission and Reception in LTE-Advanced: Deployment Scenarios and Operational Challenges," IEEE Communications Magazine, Feb. 2012, pp. 148-155.
Lee et al., "Frequency-offset estimation for MIMO and OFDM systems using orthogonal training sequences", IEEE Trans. Veh. Technol., vol. 56, No. 1, Jan. 2007, pp. 146-156.
Lee et al., "MIMO Technologies in 3GPP LTE and LTE-Advanced," EURASIP Journal on Wireless Communications and Networking, 2009, 10 pages.
Lee et al., "Network Massive MIMO for Cell-Boundary Users: From a Precoding Normalization Perspective", IEEE Goblecom Workshops, 2012.
Lee J., "Introduction of LTE-Advanced DL/UL MIMO," Samsung Electronics, Sep. 2009, 18 pages.
Lee J., et al., "A Compressed Analog Feedback Strategy for Spatially Correlated Massive MIMO Systems," in Proceedings IEEE Vehicular Technology Conference (VTC), Quebec, Canada, Sep. 2012, pp. 1-6.
Letter Restarting Period for Response from U.S. Appl. No. 13/233,006, nailed Apr. 15, 2016, 9 pages.
Li et al., "MIMO techniques in WiMAX and LTE: a feature overview", IEEE Communications Magazine, May 2010, pp. 86-92.
Li P., et al., Multiple Output Selection—LAS Algorithm in Large MIMO Systems, IEEE Commun., 2010, vol. 14 (5), pp. 399-401.
Liang et al., "Asymptotic Performance of MMSE Receivers for Large Systems Using Random Matrix Theory," IEEE Transactions on Information Theory, 2007, vol. 53, No. 11, pp. 4173-4190.
Liang et al., "Block-iterative Generalized Decision Feedback Equalizers (BI-GDFE) for Large MIMO Systems: Algorithm Design and Asymptotic Performance Analysis," IEEE Transactions on Signal Processing, 2006, vol. 54, No. 6, pp. 2035-2048.
Liang Y., et al., "Interference Suppression in Wireless Cellular Networks through Picocells," Annual Conference on Social Studies Communication and Education, 2007, vol. 2007, pp. 1041-1045.
Liang Y., et al., "On the Relationship Between MMSE-SIC and Bi-GDFE Receivers for Large Multiple-Input Multiple-Output Channels," IEEE Transactions on Signal Processing, 2008, vol. 56 (8), pp. 3627-3637.
Lindstrom M., (Ericsson), "LTE-Advanced Radio Layer 2 and RRC Aspects," 3GPP TSG-RAN WG2, Dec. 17-18, 2009, 38 pages.
Liu G., "Time and frequency offset estimation for distributed multiple-input multiple-output orthogonal frequency division multiplexing system," Institute of Engineering and Technology Communications, 2010, vol. 4, No. 6, pp. 708-715.
Love D J., et al., "Grassmannian Beamforming for Multiple-Input Multiple-Output Wireless Systems", IEEE Trans. on Info. Theory special issue on MIMO Communication, 2003, vol. 49, pp. 2735-2747.
Love et al., "An Overview of Limited Feedback in Wireless Communication Systems," Special Issue on Exploiting Limited Feedback in Tomorrow's Wireless Communication Networks, IEEE Journal on Sel. Areas in Comm., 2008, vol. 26, No. 8, pp. 1341-1365.
Love et al., "Like deck chairs on the Titanic: why spectrum reallocation won't avert the coming data crunch but technology might keep the wireless industry afloat", Feb. 2012, pp. 705-719.
Lozano A., et al., "Fundamental Limits of Cooperation", Mar. 2012, 27 pages.
Luise et al., "Carrier frequency acquisition and tracking for OFDM systems", IEEE Trans. Commun., vol. 44, No. 11, Nov. 1996, pp. 1590-1598.
Luise et al., "Low-complexity blind carrier frequency recovery for OFDM signals over frequency-selective radio channels," IEEE Transactions. Communications, 2002, vol. 50, No. 7, pp. 1182-1188.
M. Baker, "LTE-Advanced physical layer", Alcatel-Lucent, Dec. 2009, 48 pages.
M. Costa, "Writing on dirty paper," IEEE Transactions on Information Theory, vol. 29, No. 3, May 1983, pp. 439-441.
Marek S., "AT&T's Rinne talks about carrier aggregation trials, small cells and more", Retrieved from the Internet: URL: http:www.fiercebroadbandwireless.comstoryatts-rinne-talks-about-carrieraggregation-trials-small-cells-and-more2012-11-08, 3 pages.
Martinez A. O., et al "Very Large Aperture Massive MIMO: a Measurement Based Study", Dec. 8, 2014, 6 pages.
Martinez et al., "Energy Detection Using Very Large Antenna Array Receivers," 48th Asilomar Conference on Signals, Systems, and Computers Proceedings, Nov. 2-5, 2014, 5 pages.
Marzetta et al., "Noncooperative Cellular Wireless with Unlimited Numbers of Base Station Antennas," IEEE Transactions on Wireless Communications, 2010, vol. 9(11), pp. 3590-3600.
Masouros et al., "Large-Scale MIMO Transmitters in Fixed Physical Spaces: The Effect of Transmit Correlation and Mutual Coupling", IEEE Trans. Commun., 2013, vol. 61, No. 7, pp. 2794-2804.
Matthaiou et al. "Sum Rate Analysis of ZF Receivers in Distributed MIMO Systems," IEEE Journal on Selected Areas in Communications, 2013, vol. 31 (2), pp. 180-191.
Matthaiou et al., "Sum Rate Analysis of ZF Receivers in Distributed MIMO Systems with Rayleigh/Lognormal Fading," 2012 IEEE International Conference on Communications, ICC 2012, Ottawa, Jun. 10-15, pp. 3857-3861.
Mattheijssen P., "Antenna-Pattern Diversity versus Space Diversity for use at Handhelds," IEEE Trans. on Yeh. Technol, 2004, vol. 53 (4), pp. 1035-1042.
Mazrouei-Sebdani et al., Vector Perbutation Precoding and User Scheduling for Network MIMO, 2011, Wireless Communications and Networking Conference (WCNC), 2011 IEEE, pp. 203-208.
McKay et al., "Multiplexing/beamforming switching for coded MIMO in spatially correlated channels based on Closed-Form BER Approximations," IEEE Transactions on Vehicular Technology, 2007, vol. 56, No. 5, pp. 2555-2567.
Mckay MR., et al., "A throughput-based adaptive MIMO BICM approach for spatially-correlated channels," IEEE to appear in Proc. ICC, 2006, 5 pages.
McLean et al., "A re-examination of the fundamental limits on the radiation Q of electrically small antennas", IEEE Trans. Antennas Propagat., vol. 44, n.5,, (May 1996), pp. 672-676.
MikroTik, "Routerboard," Retrieved from the Internet: URL: http:routerboard.com, 2015, 30 pages.
Minn et al., "A robust timing and frequency synchronization for OFDM systems", IEEE Trans. Wireless Commun., vol. 2, No. 4, Jul. 2003, pp. 822-839.
Mitsubishi Electric, "Leakage-based Precoding for CoMP in LTE-A," 3GPP RAN1 #56, R1-090596, Feb. 9-13, 2009, 14 pages.
Miyakawa et al., "A Method of Code Conversion for Digital Communication Channels with Intersymbol Interference," Transactions of the Institute of Engineers of Japan, vol. 52-A (6), 1969, pp. 272-273.
Mohammed et al., "A Low-Complexity Precoder for Large Multiuser MISO Systems", IEEE Vehicular Technology Conference, 2008, pp. 797-801.
Mohammed et al., "Per-Antenna Constant Envelope Precoding for Large Multi-User MIMO Systems," IEEE Transactions on Communications, Jan. 2012, vol. 61, No. 3, pp. 1-24.
Mohammed et al., "Single-User Beamforming in Large-Scale MISO Systems with Per-Antenna Constant-Envelope Constraints," IEEE Transactions on Wireless Communications, Sep. 2012, vol. 2012, pp. 3992-4005.
Mohammed S. K., et al., "Constant-Envelope Multi-User Precoding for Frequency-Selective Massive MIMO Systems," IEEE Wireless Communications Letters, 2013, vol. 2(5), pp. 547-550.
Molisch et al., "MIMO Systems with Antenna Selection," IEEE Microwave Magazine, vol. 5, No. 1, Mar. 2004, pp. 46-56.
Montgomery B.G., "Analog RF-over-fiber technology, Syntonics LLC," 2008, pp. 2-51, Available Online at <http:chesapeakebayaoc.orgdocumentsSyntonics_AOC_RF_over-Fiber_19_Jan_08.pdf>.
Monziano et al., "Introduction to Adaptive Arrays," New York, Wiley, 1980, Table of Contents 21 pages.
Moose et al., "A technique for orthogonal frequency division multiplexing frequency offset correction", IEEE Trans. Commun., vol. 42, No. 10, Oct. 1994, pp. 2908-2914.
Morelli et al., "An improved frequency offset estimator for OFDM applications", IEEE Commun. Lett., vol. 3, No. 3, Mar. 1999, pp. 75-77.
Morelli et al., "Frequency ambiguity resolution in OFDM systems," IEEE Commun. Lett, 2000, vol. 4, No. 4, pp. 134-136.
Morgan Stanley, "Mobile data wave: who dares to invest, wins", Jun. 13, 2012.
Morris et al., "Network model for MIMO systems with coupled antennas and noisy amplifiers," IEEE Transactions on Antennas and Propagation, 2005, vol. 53, pp. 545-552.
Morris et al., "The Impact of Array Configuration on MIMO Wireless Channel Capacity," Proc. IEEE Antennas and Propagation Symposium, Jun. 2002, vol. 3, pp. 214-217.
Motorola, "Long Term Evolution (LTE): A Technical Overview," 2007, Retrieved from the Internet: http:business.motorola.comexperienceltepdfLTETechnicalOverview.pdf, 15 pages.
Moustakas et al., "MIMO Capacity Through Correlated Channels in the Presence of Correlated Interferers and Noise: A (Not so) Large N Analysis", Institute of Electrical and Electronics Engineers Transformations and Information Theory, 2003, vol. 49, No. 10, pp. 2545-2561.
Moustakas et al., "Optimizing Multiple-Input Single-Output (MISO) Communication Systems with General Gaussian channels: Nontrivial Covariance and Nonzero Mean", Institute of Electrical and Electronics Engineers Transactions on Information Theory, 2003, vol. 49, pp. 2770-2780.
Muharar et al., "Downlink Beamforming with Transmit-Side Channel Correlation: A Large System Analysis," in Proc. IEEE International Conference on Communications (ICC), Kyoto, Japan, Jun. 2011, 5 pages.
Muller et al., "Blind Pilot Decontamination," IEEE Journal of Selected Topics in Signal Processing on Signal Processing for Large-Scale MIMO Communications, 2013, 31 pages.
Muller et al., "Vector Precoding for Wireless MIMO Systems and its Replica Analysis," IEEE J. Sel. Areas Commun, 2008, vol. 26, No. 3, pp. 530-540.
Nam J., et al., "Joint Spatial Division and Multiplexing: Realizing Massive MIMO Gains with Limited Channel State Information," in Proceedings Conference on Information Sciences and Systems, IEEE, Mar. 2012, 6 pages.
Narasimhan et al., "M-ary Detection and q-ary Decoding in Large-Scale MIMO: A Non-Binary Belief Propagation Approach," Oct. 16, 2013, 7 pages.
NEC, "Self organizing networks", White paper, Feb. 2009, 5 pages.
Netsukuku, printed on Sep. 30, 2015, Retrieved from the Internet: URL: http:netsukuku.freaknet.org., 8 pages.
Ngo et al., Energy and Spectral Efficiency of Very Large Multiuser MIMO Systems, IEEE Transactions on Communications, May 21, 2012, vol. 61 No. 4, pp. 1436-1449.
Ngo et al., EVD-Based Channel Estimations for Multicell Multiuser MIMO with Very Large Antenna Arrays, IEEE International Conference on Acoustics, Speed and Signal Processing (ICASSP), Kyoto, Japan, Mar. 2012, 5 pages.
Ngo et al., Massive MU-MIMO Downlink TDD Systems with Linear Precoding and Downlink Pilots, Proceedings in Allerton Conference on Communication, Control, and Computing, Urbana-Champaign, Illinois, Oct. 2013.
Ngo et al., The multicell multiuser MIMO uplink with very large antenna arrays and a finite-dimensional channel, IEEE Transactions Communications, 2013, vol. 61, No. 6, pp. 2350-2361.
Ngo et al., Uplink Performance Analysis of Multicell MU-MIMO Systems with ZF Receivers, Jun. 2012, pp. 1-32.
Nguyen et al., "Precoding for Multicell MIMO Systems with Compressive Rank-q Channel Approximation", in Proc. IEEE PIMRC, Fundamentals and Phy Track, London, UK, Sep. 2013, pp. 1227-1232.
Nguyen S., et al., "Compressive Sensing-Based Channel Estimation for Massive Multiuser MIMO Systems" in proceeding IEEE WCNC, 2013, 6 pages.
Nguyen, et al., "Multiuser Transmit Beamforming via Regularized Channel Inversion: A Large System Analysis" IEEE Global Communications Conference, New Orleans, LO, US, Dec. 2008, pp. 1-4.
Nicta, "InterfereX", Available Online at <http://www.interfereX.com, Jun. 22, 2015, 3 pages.
Nokia Siemens Networks, "2020: Beyond 4g, Radio Evolution for the Gigabit Experience", White Paper, 2011, www.nokiasiemensnetworks.com, 16 pages.
Non Final Office Action, U.S. Appl. No. 16/505,593, filed Sep. 10, 2020, 12 pages.
Non Final Office Action, U.S. Appl. No. 17/528,811, filed Oct. 26, 2022, 14 pages.
Non-Final Office Action, U.S. Appl. No. 10/817,731, filed Jan. 21, 2009, 23 pages.
Non-Final Office Action, U.S. Appl. No. 10/817,731, filed Jan. 4, 2008, 14 pages.
Non-Final Office Action, U.S. Appl. No. 10/817,731, filed Mar. 15, 2010, 26 pages.
Non-Final Office Action, U.S. Appl. No. 10/817,731, filed May 18, 2007, 16 pages.
Non-Final Office Action, U.S. Appl. No. 10/902,978, filed Apr. 10, 2008, 8 pages.
Non-Final Office Action, U.S. Appl. No. 10/902,978, filed Nov. 6, 2007, 11 pages.
Non-Final Office Action, U.S. Appl. No. 11/256,478, filed Sep. 19, 2008, 14 pages.
Non-Final Office Action, U.S. Appl. No. 11/894,362, filed Oct. 29, 2008, 17 pages.
Non-Final Office Action, U.S. Appl. No. 11/894,394, filed Oct. 28, 2008, 13 pages.
Non-Final Office Action, U.S. Appl. No. 11/894,540, filed Apr. 29, 2009, 8 pages.
Non-Final Office Action, U.S. Appl. No. 11/894,540, filed Oct. 29, 2008, 13 pages.
Non-Final Office Action, U.S. Appl. No. 12/143,503, filed Dec. 9, 2010, 15 pages.
Non-Final Office Action, U.S. Appl. No. 12/630,627, filed Aug. 22, 2012, 23 pages.
Non-Final Office Action, U.S. Appl. No. 12/630,627, filed Mar. 16, 2011, 5 pages.
Non-Final Office Action, U.S. Appl. No. 12/637,643, filed Jun. 7, 2012, 25 pages.
Non-Final Office Action, U.S. Appl. No. 12/637,643, filed Sep. 23, 2011, 18 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,958, filed Aug. 13, 2015, 22 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,958, filed Jan. 16, 2018, 118 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,958, filed Jun. 23, 2014, 24 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,958, filed Nov. 21, 2012, 17 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,958, filed Nov. 4, 2016, 19 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,974, filed Apr. 24, 2015, 27 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,974, filed Aug. 1, 2013, 35 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,974, filed Dec. 19, 2012, 7 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed Aug. 1, 2013, 21 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed Aug. 14, 2013, 26 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed Dec. 19, 2012, 16 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed Jan. 14, 2019, 112 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed Jul. 1, 2016, 21 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed May 7, 2015, 25 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,975, filed Sep. 14, 2017, 23 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,988, filed Apr. 12, 2013, 45 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,988, filed Apr. 17, 2012, 10 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,988, filed Aug. 15, 2016, 19 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,988, filed Jun. 26, 2015, 17 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,988, filed Mar. 24, 2014, 11 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,988, filed Sep. 15, 2017, 11 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,989, filed Jun. 14, 2012, 10 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,989, filed Mar. 30, 2016, 35 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,989, filed Nov. 25, 2014, 17 pages.
Non-Final Office Action, U.S. Appl. No. 12/802,989, filed Nov. 26, 2013, 27 pages.
Non-Final Office Action, U.S. Appl. No. 13/232,996, filed Apr. 11, 2013, 23 pages.
Non-Final Office Action, U.S. Appl. No. 13/232,996, filed Jun. 20, 2016, 30 pages.
Non-Final Office Action, U.S. Appl. No. 13/232,996, filed Jun. 24, 2015, 15 pages.
Non-Final Office Action, U.S. Appl. No. 13/232,996, filed Mar. 21, 2014, 9 pages.
Non-Final Office Action, U.S. Appl. No. 13/232,996, filed Nov. 5, 2018, 36 pages.
Non-Final Office Action, U.S. Appl. No. 13/232,996, filed Sep. 21, 2017, 15 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Apr. 1, 2016, 9 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Apr. 16, 2013, 9 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Apr. 28, 2017, 10 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Jul. 11, 2018, 29 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Jun. 4, 2015, 12 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Sep. 12, 2013, 6 pages.
Non-Final Office Action, U.S. Appl. No. 13/233,006, filed Sep. 24, 2014, 9 pages.
Non-Final Office Action, U.S. Appl. No. 13/461,682, filed Feb. 25, 2014, 37 pages.
Non-Final Office Action, U.S. Appl. No. 13/464,648, filed Feb. 12, 2013, 12 pages.
Non-Final Office Action, U.S. Appl. No. 13/464,648, filed Feb. 14, 2014, 11 pages.
Non-Final Office Action, U.S. Appl. No. 13/475,598, filed Dec. 30, 2013, 16 pages.
Non-Final Office Action, U.S. Appl. No. 13/475,598, filed Mar. 23, 2015, 14 pages.
Non-Final Office Action, U.S. Appl. No. 13/633,702, filed Dec. 17, 2013, 21 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,950, filed Jan. 11, 2017, 65 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,950, filed May 11, 2015, 61 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,971, filed May 11, 2015, 52 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,971, filed Oct. 4, 2016, 56 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,984, filed Feb. 28, 2017, 13 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,984, filed Jan. 14, 2016, 14 pages.
Non-Final Office Action, U.S. Appl. No. 13/797,984, filed Jan. 29, 2015, 15 pages.
Non-Final Office Action, U.S. Appl. No. 13/844,355, filed Apr. 18, 2016, 21 pages.
Non-Final Office Action, U.S. Appl. No. 13/844,355, filed Aug. 12, 2019, 14 pages.
Non-Final Office Action, U.S. Appl. No. 13/844,355, filed Aug. 27, 2018, 39 pages.
Non-Final Office Action, U.S. Appl. No. 13/844,355, filed Jan. 8, 2015, 23 pages.
Non-Final Office Action, U.S. Appl. No. 13/844,355, filed Jun. 30, 2017, 159 pages.
Non-final Office Action, U.S. Appl. No. 13/844,355, filed Mar. 21, 2019, 31 pages.
Non-Final Office Action, U.S. Appl. No. 14/023,302, filed Jul. 17, 2014, 37 pages.
Non-Final Office Action, U.S. Appl. No. 14/023,302, filed Jun. 11, 2015, 8 pages.
Non-Final Office Action, U.S. Appl. No. 14/086,700, filed Apr. 2, 2015, 12 pages.
Non-Final Office Action, U.S. Appl. No. 14/086,700, filed Mar. 4, 2016, 10 pages.
Non-Final Office Action, U.S. Appl. No. 14/086,700, filed May 25, 2017, 12 pages.
Non-Final Office Action, U.S. Appl. No. 14/156,254, filed Sep. 11, 2014, 44 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Apr. 19, 2018, 141 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Apr. 4, 2019, 35 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Aug. 31, 2015, 21 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Feb. 26, 2021, 11 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Jan. 4, 2023, 13 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Mar. 14, 2017, 23 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Mar. 25, 2020, 5 pages.
Non-Final Office Action, U.S. Appl. No. 14/611,565, filed Nov. 5, 2021, 7 pages.
Non-Final Office Action, U.S. Appl. No. 14/672,014, filed Dec. 30, 2016, 7 pages.
Non-Final Office Action, U.S. Appl. No. 14/672,014, filed Feb. 22, 2021, 12 pages.
Non-Final Office Action, U.S. Appl. No. 14/672,014, filed Jun. 14, 2018, 129 pages.
Non-Final Office Action, U.S. Appl. No. 14/672,014, filed Jun. 8, 2020, 11 pages.
Non-Final office action, U.S. Appl. No. 15/057,002, filed Oct. 23, 2017, 60 pages.
Non-Final Office Action, U.S. Appl. No. 15/181,383, filed Jun. 25, 2018, 7 pages.
Non-Final Office Action, U.S. Appl. No. 15/181,383, filed May 22, 2017, 48 pages.
Non-Final Office Action, U.S. Appl. No. 15/201,276, filed Jan. 25, 2018, 77 pages.
Non-Final Office Action, U.S. Appl. No. 15/201,276, filed Mar. 1, 2017, 107 pages.
Non-Final Office Action, U.S. Appl. No. 15/340,914, filed Apr. 25, 2018, 15 pages.
Non-Final Office Action, U.S. Appl. No. 15/340,914, filed Aug. 8, 2019, 13 pages.
Non-Final Office Action, U.S. Appl. No. 15/340,914, filed Jul. 21, 2017, 114 pages.
Non-Final Office Action, U.S. Appl. No. 15/340,914, filed Mar. 25, 2020, 15 pages.
Non-Final Office Action, U.S. Appl. No. 15/616,817, filed Nov. 1, 2017, 14 pages.
Non-Final Office Action, U.S. Appl. No. 15/682,076, filed Jan. 28, 2019, 20 pages.
Non-Final Office Action, U.S. Appl. No. 15/682,076, filed May 27, 2020, 8 pages.
Non-Final Office Action, U.S. Appl. No. 15/792,610, filed Apr. 18, 2019, 147 pages.
Non-Final Office Action, U.S. Appl. No. 15/792,610, filed Apr. 29, 2020, 7 pages.
Non-Final Office Action, U.S. Appl. No. 15/792,610, filed Jan. 13, 2021, 8 pages.
Non-Final Office Action, U.S. Appl. No. 16/188,841, filed Jan. 22, 2020, 9 pages.
Non-Final Office Action, U.S. Appl. No. 16/208,895, filed Apr. 15, 2022, 6 pages.
Non-Final Office Action, U.S. Appl. No. 16/208,895, filed Apr. 26, 2019, 7 pages.
Non-Final Office Action, U.S. Appl. No. 16/208,895, filed Jan. 3, 2020, 7 pages.
Non-Final Office Action, U.S. Appl. No. 16/208,895, filed Jul. 28, 2020, 7 pages.
Non-Final Office Action, U.S. Appl. No. 16/208,895, filed Sep. 8, 2022, 7 pages.
Non-Final Office Action, U.S. Appl. No. 16/208,895, filed Sep. 9, 2021, 7 pages.
Non-Final Office Action, U.S. Appl. No. 16/253,028, filed Oct. 18, 2019, 10 pages.
Non-Final Office Action, U.S. Appl. No. 16/436,864, filed Mar. 4, 2020, 6 pages.
Non-Final Office Action, U.S. Appl. No. 16/578,265, filed May 12, 2020, 8 pages.
Non-Final Office Action, U.S. Appl. No. 16/719,169, filed Feb. 4, 2021, 15 pages.
Non-Final Office Action, U.S. Appl. No. 17/100,875, filed Nov. 9, 2021, 10 pages.
Non-Final Office Action, U.S. Appl. No. 17/224,977, filed Feb. 22, 2023, 7 pages.
Non-Final Office Action, U.S. Appl. No. 17/234,699, filed Jul. 15, 2021, 9 pages.
Non-Final Office Action, U.S. Appl. No. 17/308,031, filed Jul. 15, 2021, 12 pages.
Non-Final Office Action, U.S. Appl. No. 17/317,856, filed Jul. 19, 2021, 39 pages.
Non-Final Office Action, U.S. Appl. No. 17/361,252, filed Oct. 20, 2021, 10 pages.
Non-Final Office Action, U.S. Appl. No. 17/379,985, filed Aug. 26, 2021, 10 pages.
Non-Final Office Action, U.S. Appl. No. 17/498,666, filed Aug. 18, 2022, 7 pages.
Non-Final Office Action, U.S. Appl. No. 17/498,666, filed Dec. 29, 2021, 22 pages.
Non-Final Office Action, U.S. Appl. No. 17/541,809, filed Feb. 8, 2022, 9 pages.
Non-Final Office Action, U.S. Appl. No. 17/946,856, filed Mar. 17, 2023, 12 pages.
Non-Final Office Action, U.S. Appl. No. 17/948,193, filed Nov. 22, 2022, 23 pages.
Notice of Acceptance from foreign counterpart Australian Patent Application No. 20160219662, dated May 5, 2017, 3 pages.
Notice of Acceptance from foreign counterpart Australian Patent Application No. AU20140200745, dated Sep. 19, 2016, 3 page.
Notice of Acceptance from foreign counterpart New Zealand Patent Application No. 610463 dated Aug. 5, 2015, 1 page.
Notice of Acceptance from foreign counterpart New Zealand Patent Application No. 717370, dated Jan. 10, 2018, 1 page.
Notice of Acceptance, AU App. No. 2012308632, Sep. 13, 2017, 4 pages.
Notice of Acceptance, AU App. No. 2017210619, Oct. 14, 2019, 4 pages.
Notice of Acceptance, AU App. No. 2017350850, Aug. 10, 2022, 4 pages.
Notice of Acceptance, AU App. No. 2018201553, Nov. 14, 2019, 4 pages.
Notice of Acceptance, AU App. No. 2018253582, Nov. 18, 2019, 3 pages.
Notice of Acceptance, AU Patent App. No. 2013327697, Feb. 15, 2017, 4 pages.
Notice of Acceptance, AU Patent App. No. 2014248533, Jun. 28, 2017, 4 pages.
Notice of Acceptance, New Zealand Patent App. No. 729017, Jun. 28, 2018, 1 page.
Notice of Acceptance, NZ App. No. 738000, Jun. 4, 2019, 1 page.
Notice of Acceptance, NZ App. No. 751530, May 1, 2020, 2 pages.
Notice of Allowance and Search Report, TW Patent App. No. 102134408, Feb. 17, 2017, 9 pages.
Notice of Allowance from counterpart MX Patent App. No. MX/a/2014/002900, Nov. 26, 2015, 4 pages. Translation attached.
Notice of Allowance received for Israel Patent Application No. 291825, mailed on Jan. 2, 2024, 2 pages.
Notice of Allowance received for Taiwanese Patent Application No. 111133396, mailed on Dec. 26, 2023, 4 pages of Original Document Only.
Notice of Allowance, AU Patent App. No. 2011323559, May 13, 2016, 2 pages.
Notice of Allowance, CA App. No. 2,848,355, Apr. 3, 2020, 1 page.
Notice of Allowance, CA App. No. 2695799, Feb. 9, 2016, 1 page.
Notice of Allowance, CA App. No. 2816556, May 18, 2021, 1 page.
Notice of Allowance, Canadian Patent App. No. P14906, Jun. 1, 2015, 1 page.
Notice of Allowance, CN App. No. 201480016091.6, Apr. 24, 2020, 8 pages (3 pages of English Translation and 5 pages of Original Document).
Notice of Allowance, IL App. No. 248265, May 7, 2020, 3 pages.
Notice of Allowance, IL App. No. 269145, Aug. 23, 2020, 3 pages of Original Document Only.
Notice of Allowance, KR App. No. 10-2014-7009876, Oct. 4, 2019, 3 pages (1 page of English Translation and 2 pages of Original Document).
Notice of Allowance, KR App. No. 10-2015-7014235, Oct. 28, 2020, 3 pages (1 pages of English Translation and 2 page of Original Document).
Notice of Allowance, KR App. No. 10-2017-7002596, Feb. 27, 2019, 3 pages.
Notice of Allowance, KR App. No. 10-2018-7035654, Oct. 2, 2019, 4 pages (2 pages of English Translation and 2 pages of Original Document).
Notice of Allowance, KR Patent App. No. 2015-7002560, Feb. 4, 2016, 2 Pages.
Notice of Allowance, KR. App. No. 10-2014-7035524, Oct. 14, 2020, 4 pages (1 page of English Translation and 3 pages of Original Document).
Notice of Allowance, TW App. No. 107123446, Nov. 20, 2019, 3 pages of Original Document Only.
Notice of Allowance, U.S. Appl. No. 10/817,731, filed Sep. 30, 2010, 6 pages.
Notice of Allowance, U.S. Appl. No. 10/902,978, filed Apr. 16, 2008, 7 pages.
Notice of Allowance, U.S. Appl. No. 10/902,978, filed Jun. 27, 2008, 7 pages.
Notice of Allowance, U.S. Appl. No. 11/256,478, filed Jan. 26, 2010, 9 pages.
Notice of Allowance, U.S. Appl. No. 11/256,478, filed Jul. 30, 2009, 9 pages.
Notice of Allowance, U.S. Appl. No. 11/256,478, filed Oct. 29, 2009, 16 pages.
Notice of Allowance, U.S. Appl. No. 11/894,362, filed Mar. 23, 2009, 10 pages.
Notice of Allowance, U.S. Appl. No. 11/894,362, filed Nov. 10, 2009, 5 pages.
Notice of Allowance, U.S. Appl. No. 11/894,362, filed Sep. 3, 2009, 12 pages.
Notice of Allowance, U.S. Appl. No. 11/894,394, filed Jul. 30, 2009, 14 pages.
Notice of Allowance, U.S. Appl. No. 11/894,394, filed Jun. 26, 2009, 7 pages.
Notice of Allowance, U.S. Appl. No. 11/894,394, filed Mar. 6, 2009, 11 pages.
Notice of Allowance, U.S. Appl. No. 11/894,540, filed Nov. 9, 2009, 5 pages.
Notice of Allowance, U.S. Appl. No. 11/894,540, filed Sep. 14, 2009, 13 pages.
Notice of Allowance, U.S. Appl. No. 12/143,503, filed Apr. 11, 2011, 9 pages.
Notice of Allowance, U.S. Appl. No. 12/143,503, filed Aug. 18, 2011, 12 pages.
Notice of Allowance, U.S. Appl. No. 12/143,503, filed Dec. 9, 2011, 11 pages.
Notice of Allowance, U.S. Appl. No. 12/630,627, filed Sep. 25, 2013, 11 pages.
Notice of Allowance, U.S. Appl. No. 12/637,643, filed Jan. 17, 2013, 11 pages.
Notice of Allowance, U.S. Appl. No. 12/802,938, filed Apr. 4, 2013, 16 pages.
Notice of Allowance, U.S. Appl. No. 12/802,938, filed Dec. 6, 2012, 37 pages.
Notice of Allowance, U.S. Appl. No. 12/802,938, filed May 24, 2013, 10 pages.
Notice of Allowance, U.S. Appl. No. 12/802,938, filed Sep. 19, 2012, 8 pages.
Notice of Allowance, U.S. Appl. No. 12/802,974, filed Feb. 28, 2017, 15 pages.
Notice of Allowance, U.S. Appl. No. 12/802,974, filed Jun. 30, 2017, 89 pages.
Notice of Allowance, U.S. Appl. No. 12/802,974, filed Oct. 4, 2017, 17 pages.
Notice of Allowance, U.S. Appl. No. 12/802,974, filed Sep. 13, 2016, 43 pages.
Notice of Allowance, U.S. Appl. No. 12/802,974, filed Sep. 29, 2016, 5 pages.
Notice of Allowance, U.S. Appl. No. 12/802,975, filed Apr. 17, 2020, 12 pages.
Notice of Allowance, U.S. Appl. No. 12/802,975, filed Aug. 26, 2020, 14 pages.
Notice of Allowance, U.S. Appl. No. 12/802,976, filed Apr. 14, 2011, 8 pages.
Notice of Allowance, U.S. Appl. No. 12/802,976, filed Aug. 22, 2011, 8 pages.
Notice of Allowance, U.S. Appl. No. 12/802,976, filed Dec. 9, 2011, 11 pages.
Notice of Allowance, U.S. Appl. No. 12/802,976, filed Mar. 14, 2011, 9 pages.
Notice of Allowance, U.S. Appl. No. 12/802,976, filed Nov. 29, 2010, 6 pages.
Notice of Allowance, U.S. Appl. No. 12/802,988, filed Nov. 15, 2018, 11 pages.
Notice of Allowance, U.S. Appl. No. 12/802,988, filed Sep. 25, 2018, 96 pages.
Notice of Allowance, U.S. Appl. No. 12/802,989, filed Jun. 27, 2017, 121 pages.
Notice of Allowance, U.S. Appl. No. 12/917,257, filed Dec. 6, 2012, 8 pages.
Notice of Allowance, U.S. Appl. No. 12/917,257, filed Feb. 15, 2013, 18 pages.
Notice of Allowance, U.S. Appl. No. 12/917,257, filed May 31, 2013, 12 pages.
Notice of Allowance, U.S. Appl. No. 13/232,996, filed Jan. 9, 2019, 11 pages.
Notice of Allowance, U.S. Appl. No. 13/232,996, filed Mar. 20, 2019, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/232,996, filed Oct. 12, 2016, 5 pages.
Notice of Allowance, U.S. Appl. No. 13/232,996, filed Oct. 26, 2016, 4 pages.
Notice of Allowance, U.S. Appl. No. 13/233,006, filed Apr. 3, 2019, 19 pages.
Notice of Allowance, U.S. Appl. No. 13/233,006, filed Jul. 12, 2019, 12 pages.
Notice of Allowance, U.S. Appl. No. 13/233,006, filed May 30, 2019, 12 pages.
Notice of Allowance, U.S. Appl. No. 13/461,682, filed Oct. 2, 2014, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Apr. 24, 2015, 23 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Aug. 14, 2015, 21 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Aug. 25, 2015, 4 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Feb. 23, 2016, 15 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Jan. 9, 2015, 11 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Nov. 30, 2015, 12 pages.
Notice of Allowance, U.S. Appl. No. 13/464,648, filed Sep. 19, 2014, 5 pages.
Notice of Allowance, U.S. Appl. No. 13/475,596, filed Oct. 19, 2015, 29 pages.
Notice of Allowance, U.S. Appl. No. 13/475,598, filed Feb. 14, 2017, 41 pages.
Notice of Allowance, U.S. Appl. No. 13/475,598, filed Oct. 19, 2015, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/633,702, filed Aug. 15, 2014, 11 pages.
Notice of Allowance, U.S. Appl. No. 13/633,702, filed Jan. 6, 2015, 27 pages.
Notice of Allowance, U.S. Appl. No. 13/797,950, filed Apr. 16, 2018, 117 pages.
Notice of Allowance, U.S. Appl. No. 13/797,950, filed Aug. 2, 2018, 23 pages.
Notice of Allowance, U.S. Appl. No. 13/797,971, filed Jan. 29, 2018, 15 pages.
Notice of Allowance, U.S. Appl. No. 13/797,971, filed May 4, 2017, 8 pages.
Notice of Allowance, U.S. Appl. No. 13/797,971, filed Oct. 18, 2017, 144 pages.
Notice of Allowance, U.S. Appl. No. 13/797,984, filed Jan. 17, 2018, 146 pages.
Notice of Allowance, U.S. Appl. No. 13/797,984, filed Oct. 19, 2017, 10 pages.
Notice of Allowance, U.S. Appl. No. 13/844,355, filed Dec. 16, 2019, 2 pages.
Notice of Allowance, U.S. Appl. No. 13/844,355, filed Oct. 21, 2019, 8 pages.
Notice of Allowance, U.S. Appl. No. 14/023,302, filed Apr. 27, 2016, 3 pages.
Notice of Allowance, U.S. Appl. No. 14/023,302, filed Feb. 5, 2016, 27 pages.
Notice of Allowance, U.S. Appl. No. 14/023,302, filed May 17, 2016, 5 pages.
Notice of Allowance, U.S. Appl. No. 14/023,302, filed Oct. 9, 2015, 5 pages.
Notice of Allowance, U.S. Appl. No. 14/086,700, filed Feb. 28, 2018, 5 pages.
Notice of Allowance, U.S. Appl. No. 14/086,700, filed May 18, 2018, 21 pages.
Notice of Allowance, U.S. Appl. No. 14/086,700, filed Sep. 28, 2018, 21 pages.
Notice of Allowance, U.S. Appl. No. 14/156,254, filed Feb. 26, 2016, 21 pages.
Notice of Allowance, U.S. Appl. No. 14/156,254, filed Jul. 8, 2015, 7 pages.
Notice of Allowance, U.S. Appl. No. 14/156,254, filed Mar. 12, 2015, 5 pages.
Notice of Allowance, U.S. Appl. No. 14/156,254, filed Nov. 11, 2015, 29 pages.
Notice of Allowance, U.S. Appl. No. 14/156,254, filed Nov. 3, 2015, 29 pages.
Notice of Allowance, U.S. Appl. No. 14/672,014, filed Sep. 23, 2021, 11 pages.
Notice of Allowance, U.S. Appl. No. 15/057,002, filed Apr. 16, 2019, 11 pages.
Notice of Allowance, U.S. Appl. No. 15/057,002, filed Dec. 19, 2018, 68 pages.
Notice of Allowance, U.S. Appl. No. 15/181,383, filed Jan. 25, 2019, 87 pages.
Notice of Allowance, U.S. Appl. No. 15/181,383, filed Mar. 20, 2019, 10 pages.
Notice of Allowance, U.S. Appl. No. 15/201,276, filed Jan. 23, 2019, 29 pages.
Notice of Allowance, U.S. Appl. No. 15/201,276, filed May 28, 2019, 4 pages.
Notice of Allowance, U.S. Appl. No. 15/201,276, filed Nov. 27, 2017, 7 pages.
Notice of Allowance, U.S. Appl. No. 15/201,276, filed Oct. 11, 2018, 5 pages.
Notice of Allowance, U.S. Appl. No. 15/340,914, filed Dec. 2, 2020, 9 pages.
Notice of Allowance, U.S. Appl. No. 15/340,914, filed Mar. 15, 2021, 4 pages.
Notice of Allowance, U.S. Appl. No. 15/616,817, filed Apr. 25, 2018, 10 pages.
Notice of Allowance, U.S. Appl. No. 15/616,817, filed Jun. 26, 2018, 131 pages.
Notice of Allowance, U.S. Appl. No. 15/616,817, filed Oct. 22, 2018, 21 pages.
Notice of Allowance, U.S. Appl. No. 15/682,076, filed Jan. 14, 2021, 11 pages.
Notice of Allowance, U.S. Appl. No. 15/682,076, filed Mar. 24, 2021, 11 pages.
Notice of Allowance, U.S. Appl. No. 15/792,610, filed Jul. 13, 2021, 10 pages.
Notice of Allowance, U.S. Appl. No. 15/792,610, filed Nov. 3, 2021, 2 pages.
Notice of Allowance, U.S. Appl. No. 15/792,610, filed Oct. 2, 2020, 7 pages.
Notice of Allowance, U.S. Appl. No. 15/792,610, filed Oct. 26, 2021, 2 pages.
Notice of Allowance, U.S. Appl. No. 16/188,841, filed Sep. 10, 2020, 9 pages.
Notice of Allowance, U.S. Appl. No. 16/208,895, filed Feb. 8, 2023, 6 pages.
Notice of Allowance, U.S. Appl. No. 16/253,028, filed Dec. 27, 2019, 10 pages.
Notice of Allowance, U.S. Appl. No. 16/253,028, filed Feb. 25, 2020, 7 pages.
Notice of Allowance, U.S. Appl. No. 16/253,028, filed Mar. 12, 2020, 7 pages.
Notice of Allowance, U.S. Appl. No. 16/436,864, filed Jun. 11, 2020, 5 pages.
Notice of Allowance, U.S. Appl. No. 16/578,265, filed Jan. 28, 2021, 7 pages.
Notice of Allowance, U.S. Appl. No. 16/578,265, filed Mar. 31, 2021, 7 pages.
Notice of Allowance, U.S. Appl. No. 16/719,169, filed Jun. 17, 2021, 8 pages.
Notice of Allowance, U.S. Appl. No. 16/719,169, filed Jun. 30, 2021, 2 pages.
Notice of Allowance, U.S. Appl. No. 16/719,169, filed Sep. 16, 2021, 2 pages.
Notice of Allowance, U.S. Appl. No. 17/100,875, filed Apr. 22, 2022, 8 pages.
Notice of Allowance, U.S. Appl. No. 17/100,875, filed Aug. 10, 2022, 9 pages.
Notice of Allowance, U.S. Appl. No. 17/234,699, filed Jul. 28, 2021, 7 pages.
Notice of Allowance, U.S. Appl. No. 17/308,031, filed Aug. 4, 2021, 7 pages.
Notice of Allowance, U.S. Appl. No. 17/317,856, filed Oct. 1, 2021, 2 pages.
Notice of Allowance, U.S. Appl. No. 17/317,856, filed Sep. 23, 2021, 8 pages.
Notice of Allowance, U.S. Appl. No. 17/317,856, filed Sep. 9, 2021, 8 pages.
Notice of Allowance, U.S. Appl. No. 17/361,252, filed Nov. 18, 2021, 14 pages.
Notice of Allowance, U.S. Appl. No. 17/379,985, filed Dec. 15, 2021, 7 pages.
Notice of Allowance, U.S. Appl. No. 17/498,666, filed Oct. 13, 2022, 7 pages.
Notice of Allowance, U.S. Appl. No. 17/498,666, filed Sep. 29, 2022, 10 pages.
Notice of Allowance, U.S. Appl. No. 17/541,809, filed Mar. 15, 2022, 5 pages.
Notice of Allowance, U.S. Appl. No. 17/586,765, filed Apr. 7, 2022, 7 pages.
Notice of Allowance, U.S. Appl. No. 17/586,765, filed Jul. 27, 2022, 7 pages.
Notice of Allowance, U.S. Appl. No. 17/948,193, filed Dec. 21, 2022, 5 pages.
Notice of Allowancefrom U.S. Appl. No. 12/802,958, filed Sep. 19, 2018, 22 pages.
Notice of Final Rejection, KR App. No. 10-2015-7028298, Mar. 14, 2022, 8 pages (4 pages of English Translation and 4 pages of Original Document).
Notice of Final Rejection, KR App. No. 10-2020-7002077, Oct. 15, 2020, 8 pages (4 pages of English Translation and 4 pages of Original Document).
Notice of Grant, CN App. No. 201210464974.6, Jul. 1, 2015, 3 pages.
Notice of Reason for Rejection, KR App. No. 10-2019-7006428, Jun. 28, 2021, 20 pages (11 pages of English Translation and 9 pages of Original Document).
Notice of Reasons for Refusal, JP App. No. 2019-074024, Aug. 3, 2020, 10 pages (6 pages of English Translation and 4 pages of Original Document).
Notice of Reasons for Refusal, JP App. No. 2019-093904, May 27, 2021, 5 pages (3 pages of English Translation and 2 pages of Original Document).
Notice of Reasons for Refusal, JP App. No. 2019-109413, Sep. 10, 2020, 8 pages (5 pages of English Translation and 3 pages of Original Document).
Notice of Reasons for Rejection, JP App. No. 2016-234908, May 23, 2019, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Notice of Reasons for Rejection, JP App. No. 2016-234908, Nov. 22, 2018, 10 pages.
Notice of Reasons for Rejection, JP Patent App. No. 20150510498, Sep. 26, 2016, 21 pages.
Notice of Reasons for Rejection, JP Patent App. No. 2016-501744, Mar. 5, 2018, 15 pages.
Notice of Reasons for Rejection, KR App. No. 10-2014-7009876, Mar. 25, 2019, 11 pages.
Notice to File a Response, KR App. No. 10-2018-7035654, Dec. 14, 2018, 10 pages.
Notification for Granting Patent Right, Chinese Patent App. No. 201180061132.X, Apr. 6, 2017, 6 pages.
Notification of Reason for Refusal, KR App. No. 10-2019-7014768, Jun. 27, 2019, 10 pages (5 pages of English Translation and 5 pages of Original Document).
Notification of Reason for Refusal, KR App. No. 10-2021-7002823, Apr. 14, 2021, 06 pages (03 pages of English Translation and 03 pages of Original Document).
Notification of Reason for Refusal, KR. App. No. 10-2016-7031260, Dec. 4, 2020, 12 pages (7 pages of English Translation and 5 pages of Original Document).
Notification of Reasons for Refusal, JP Patent App. No. 2017-112639, Aug. 13, 2018, 4 pages.
Notification of the 1st Substantive requirement, MX App. No. MX/A/2017/002906, Sep. 13, 2019, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Notification of the 2nd Substantive requirement, MX App. No. MX/A/2017/002906, Jul. 15, 2020, 10 pages (5 pages of English Translation and 5 pages of Original Document).
Notification on Grant of Patent Right for Invention, CN App. No. 201210466082.X, Jan. 26, 2017, 3 pages.
Oberli et al., "Maximum likelihood tracking algorithms for MIMOOFDM, in Communications," IEEE International Conference on Networking, Jun. 20-24, 2004, vol. 4, pp. 2468-2472.
Oday, "Measured Path Loss and Multipath Propagation Characteristics in UHF and Microwave Frequency Bands for Urban Mobile Communications," IEEE, 2001, pp. 337-341.
Office Action and Examination Search Report, CA App. No. 2885817, Jul. 16, 2019, 4 pages.
Office Action and Examination Search Report, CA App. No. 2904981, May 3, 2019, 6 pages.
Office Action and Search Report, Chinese Patent App. No. CN201380035543, Jan. 3, 2017, 22 pages.
Office Action and Search Report, CN App. No. 201780052444.1, Sep. 20, 2022, 20 pages (11 pages of English Translation and 9 pages of Original Document).
Office Action and Search Report, RU App. No. 2016144927/08(072072), Oct. 30, 2018, 12 pages.
Office Action and Search Report, RU Patent App. No. 2014148791/28(078479), Apr. 13, 2017, 14 pages.
Office Action and Search Report, RU Patent App. No. 2015143188/07, Dec. 15, 2017, 13 pages.
Office Action and Search Report, TW App. No. 103107541, Dec. 6, 2017, 15 pages.
Office Action and Search Report, TW App. No. 107123446, Aug. 8, 2019, 27 pages (10 pages of English Translation and 17 pages of Original Document).
Office Action and Search Report, TW Patent App. No. 105143637, Jan. 19, 2018, 12 pages.
Office Action for EP App. No. 08798313.6, May 2, 2017, 7 pages.
Office Action for EP App. No. 10156950.7, May 9, 2017, 9 pages.
Office Action received for Brazil Patent Application No. 112019003824-8, mailed on Jul. 17, 2024, 4 pages of English translation Only.
Office Action received for Canadian Patent Application No. 2938253, mailed on Dec. 29, 2023 4 pages.
Office Action received for Canadian Patent Application No. 3170717, mailed on Nov. 27, 2023, 3 pages.
Office Action received for Chinese Patent Application No. 202210479592.4, mailed on Apr. 18, 2024, 12 pages of original document only.
Office Action received for Indian Patent Application No. 201947016714, mailed on Jan. 1, 2024, 1 page.
Office Action received for Indian Patent Application No. 3008/CHENP/2015, mailed on Jan. 5, 2024, 3 pages.
Office Action received for Indian Patent Application No. 5512/CHENP/2015, mailed on Oct. 16, 2023 1 page.
Office Action received for Indian Patent Application No. 8134/CHENP/2014, mailed on Jan. 8, 2024 5 pages.
Office Action received for Korean Patent Application No. 10-2022-7042645, mailed on Apr. 22, 2024, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action received for Taiwanese Patent Application No. 111107760, mailed on May 15, 2024, 9 pages (4 pages of English Translation and 5 pages of Original Document).
Office Action received for Taiwanese Patent Application No. 112109799, mailed on Dec. 28, 2023, 5 pages of Original Document Only.
Office Action, AU App. No. 2004203336, Jun. 5, 2009, 2 pages.
Office Action, AU App. No. 2019202296, May 12, 2020, 5 pages.
Office Action, CA App. No. 2514383, Jul. 26, 2012, 3 pages.
Office Action, CA App. No. 2816556, May 19, 2020, 3 pages.
Office Action, CA App. No. 2816556, May 30, 2019, 3 pages.
Office Action, CA App. No. 2945987, Apr. 13, 2021, 3 pages.
Office Action, CA App. No. 3025857, Dec. 8, 2020, 5 pages.
Office Action, CN App. No. 200510088676.1, Feb. 5, 2010, 18 pages.
Office Action, CN App. No. 200510088676.1, Jan. 25, 2011, 8 pages.
Office Action, CN App. No. 200510088676.1, Mar. 20, 2009, 24 pages.
Office Action, CN App. No. 200510088676.1, Oct. 26, 2010, 4 pages.
Office Action, CN App. No. 200880102933.4, Dec. 7, 2012, 20 pages.
Office Action, CN App. No. 201380061515.6, Apr. 23, 2019, 2 pages.
Office Action, CN Patent App. No. 201180061132.X, May 27, 2015, 6 pages.
Office Action, CN Patent App. No. 201180061132.X, Oct. 10, 2016, 11 pages.
Office Action, EP App. No. 05254757.7, Apr. 21, 2022, 6 pages.
Office Action, EP App. No. 05254757.7, Dec. 21, 2018, 4 pages.
Office Action, EP App. No. 05254757.7, Dec. 3, 2012, 6 pages.
Office Action, EP App. No. 05254757.7, Nov. 11, 2019, 5 pages.
Office Action, EP App. No. 05254757.7, Sep. 2, 2020, 5 pages.
Office Action, EP App. No. 08798313.6, Oct. 24, 2017, 8 pages.
Office Action, EP App. No. 10156950.7, Dec. 12, 2017, 9 pages.
Office Action, EP App. No. 10156950.7, Jan. 7, 2020, 6 pages.
Office Action, EP App. No. 10184659, Apr. 21, 2022, 6 pages.
Office Action, EP App. No. 10184659, Dec. 4, 2017, 5 pages.
Office Action, EP App. No. 10184659, Nov. 11, 2019, 5 pages.
Office Action, EP App. No. 10184659.0, Dec. 21, 2018, 4 pages.
Office Action, EP App. No. 10184659.0, Sep. 2, 2020, 5 pages.
Office Action, EP App. No. 12762167.0, Sep. 30, 2016, 6 pages.
Office Action, EP App. No. 13784690.3, Apr. 15, 2019, 4 pages.
Office Action, EP App. No. 13784690.3, Aug. 23, 2018, 6 pages.
Office Action, EP App. No. 13790935, Oct. 23, 2019, 8 pages.
Office Action, EP App. No. 13790935.4, Feb. 4, 2019, 11 pages.
Office Action, EP App. No. 13843203.4, Feb. 25, 2019, 6 pages.
Office Action, EP App. No. 13843203.4, Mar. 23, 2018, 5 pages.
Office Action, EP App. No. 13856705.2, Jul. 18, 2017, 5 pages.
Office Action, EP App. No. 14770916.6, Mar. 13, 2018, 5 pages.
Office Action, EP App. No. 15746217.7, Feb. 1, 2021, 10 pages.
Office Action, EP App. No. 15746217.7, Jan. 26, 2023, 6 pages.
Office Action, EP App. No. 15780522.7, Jun. 7, 2021, 8 pages.
Office Action, EP App. No. 15780522.7, Mar. 19, 2020, 6 pages.
Office Action, EP App. No. 17844265.3, May 10, 2021, 9 pages.
Office Action, EP App. No. 17864744.2, Oct. 27, 2022, 9 pages.
Office Action, EP App. No. 18186156.8, Jul. 30, 2019, 5 pages.
Office Action, EP App. No. 18186156.8, Jun. 12, 2020, 6 pages.
Office Action, EP App. No. 19159810.1, Oct. 4, 2021, 7 pages.
Office Action, IL App. No. 235518, Apr. 7, 2019, 4 pages.
Office Action, IL App. No. 241319, Nov. 26, 2019, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action, IL App. No. 248265, Feb. 26, 2020, 4 pages (2 pages of English Translation and 2 pages of Original Document).
Office Action, IL App. No. 248265, Oct. 25, 2018, 6 pages.
Office Action, IL App. No. 253541, Nov. 29, 2018, 4 pages.
Office Action, IL App. No. 269145, Jun. 16, 2020, 4 pages (2 pages of English Translation and 2 pages of Original Document).
Office Action, IL App. No. 270106, May 19, 2020, 8 pages (4 pages of English Translation and 4 pages of Original Document).
Office Action, IL App. No. 272481, Nov. 9, 2022, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action, JP App No 2019-168511, Dec. 24, 2020, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action, JP App. No. 2007-506302, Jan. 11, 2011, 5 pages.
Office Action, JP App. No. 20150162819, Oct. 3, 2016, 6 pages.
Office Action, JP App. No. 2016-550718, Jan. 10, 2019, 4 pages.
Office Action, JP App. No. 2016-562961, Feb. 6, 2020, 7 pages (4 pages of English Translation and 3 pages of Original Document).
Office Action, JP App. No. 2018-222367, Jun. 8, 2020, 7 pages (4 pages of English Translation and 3 pages of Original Document).
Office Action, JP App. No. 2019-039195, Jun. 17, 2019, 8 pages (4 pages of English Translation and 4 pages of Original Document).
Office Action, JP App. No. 2019-093904, Jul. 6, 2020, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action, JP App. No. 2019-238040, Feb. 25, 2021, 7 pages (4 pages of English Translation and 3 pages of Original Document).
Office Action, JP Patent App. No. 2012-057351, Jul. 1, 2013, 6 pages.
Office Action, JP Patent App. No. 2012-057351, Mar. 10, 2014, 2 pages.
Office Action, JP Patent App. No. 2013-156855, Apr. 17, 2015, 6 pages.
Office Action, JP Patent App. No. 2013-537753, Sep. 7, 2015, 9 pages.
Office Action, KR App. No. 1020107006265, Jul. 29, 2014, 10 pages.
Office Action, KR App. No. 10-2014-7035524, Oct. 21, 2019, 11 pages (6 pages of English Translation and 5 pages of Original Document).
Office Action, KR App. No. 10-2015-7028298, Jul. 27, 2020, 14 pages (8 pages of English Translation and 6 pages of Original Document).
Office Action, KR App. No. 10-2015-7029455, Jul. 27, 2020, 14 pages (8 pages of English Translation and 6 pages of Original Document).
Office Action, KR Patent App. No. 20050070079, Jul. 29, 2011, 3 pages.
Office Action, KR Patent App. No. 2015-7002560, May 21, 2015, 10 pages.
Office Action, MX App. No. MX/A/2019/001966, Mar. 16, 2022, 5 pages of original document only.
Office Action, MX Patent App. No. MX/a/2014/002900, May 25, 2015, 7 pages.
Office Action, MX Patent App. No. MX/a/2014/013377, Mar. 22, 2016, 20 pages.
Office Action, MX Patent App. No. MX/a/2014/013377, Nov. 30, 2017, 4 pages.
Office Action, MX Patent App. No. Mx/a/2015/002992, Nov. 8, 2016, 4 pages.
Office Action, New Zealand Patent App. No. 610463, Jan. 22, 2014, 2 pages.
Office Action, RU App. No. 2014151216, Sep. 30, 2016, 12 pages.
Office Action, RU App. No. 2019104259, Aug. 20, 2020, 14 pages (7 pages of English Translation and 7 pages of Original Document).
Office Action, RU Patent App. No. 2016144927, Dec. 21, 2016, 6 pages.
Office Action, TW App No. 102117728, Nov. 29, 2016, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action, TW App. No. 094125985, Jan. 6, 2012, 7 pages.
Office Action, TW App. No. 100139880, Jan. 26, 2017, 7 pages.
Office Action, TW App. No. 103107541, Sep. 28, 2018, 7 pages.
Office Action, TW App. No. 108118765, Apr. 16, 2020, 6 pages (3 pages of English Translation and 3 pages of Original Document).
Office Action, TW App. No. 108130461, Oct. 30, 2020, 16 pages (7 pages of English Translation and 9 pages of Original Document).
Office Action, TW App. No. 108148122, Jul. 8, 2020, 19 pages (8 pages of English Translation and 11 pages of Original Document).
Office Action, TW App. No. 109105764, Sep. 9, 2020, 47 pages (21 pages of English Translation and 26 pages of Original Document).
Office Action, TW App. No. 110125850, Dec. 16, 2021, 7 pages (4 pages of English Translation and 3 pages of Original Document).
Office Action, TW App. No. 111124746, Mar. 15, 2023, 3 pages (Only English Translation).
Office Action, TW Patent App. No. 101133865, Oct. 28, 2016, 5 pages.
Office Action, TW Patent App. No. 102116145, Mar. 31, 2017, 7 pages.
Office Action, U.S. Appl. No. 12/802,988, filed Aug. 14, 2013, 26 pages.
Onggosanusi et al., High Rate Space-Time Block Coded Scheme: Performance and Improvement in Correlated Fading Channels, Proc. IEEE Wireless Comm. and Net. Conf, Mar. 2002, vol. 1, pp. 194-199.
Optimized Markov Chain Monte Carlo for Signal Detection in MIMO Systems: An Analysis of the Stationary Distribution and Mixing Time, Signal Processing, vol. 62, No. 17, Sep. 2014.
Ozgur et al., "Spatial Degrees of Freedom of Large Distributed MIMO Systems and Wireless Ad Hoc Networks", Institute of Electrical and Electronics Engineers Journal on Selected Areas in Communications, 2013, vol. 31, No. 2, pp. 202-214.
Pan, et al., "Precoding and Power allocation for Cooperative MIMO systems", International Conference on Wireless Communications, Networking and Mobile Computing, IEEE, 2006, 4 pages.
Panasonic, "Target scenarios for new carrier types," 3GPP TSG-RAN WGI#72, R1-130684, Jan. 28, 2013-Feb. 1, 2013, 7 pages.
Papadogiannis et al "Efficient Selective Feedback Design for Multicell Cooperative Networks," Institute of Electrical and Electronics Engineers Transactions on Vehicular Technology, 2010, vol. 60, No. 1, pp. 196-205.
Papadopoulos et al., Achieving Large Spectral Efficiencies from MU-MIMO with Tens of Antennas: Location-Adaptive TDD MU-MIMO Design and User Scheduling, in Proc. IEEE Asilomar Conf. on Signals, Systems, and Computers (ACSSC), Pacific Grove, CA, Nov. 2010, pp. 636-643.
Parkvall et al., "LTE Advanced-Evolving LTE Towards IMT-Advanced," Ericsson, IEEE VTC, Sep. 2008, 5 pages.
Partial Supplementary Search Report, EP App. No. 15780522.7, Oct. 20, 2017, 7 pages.
Paulraj et al., "Introduction to Space-Time Wireless Communications", 2003, 33 Pages.
Paulraj, "Is OFDMA, MIMO and OS the right stuff for mobile broad-band?" 63 pages, http://www.ieeevtc.org/vtc2005fal1/presentations/paulraj.pdf, Sep. 2005.
Payami et al., Channel Measurements and Analysis for Very Large Array Systems At 2.6 GHz, in Proc. 6th European Conference on Antennas and Propagation, EuCAP 2012, Prague, Czech Republic, Mar. 26, 2012, 5 pages.
Per-Erik et al., "VDSL2: Next Important Broadband Technology", Ericsson Review No. 1, 2006, pp. 36-47.
Perlman et al., "Distributed-Input Distributed-Output (Dido), Wireless Technology: A New Approach to Multiuser Wireless," Retrieved from http://www.rearden.com/DIDO/DIDO White Paper 110727.pdf, Aug. 2011, 19 pages.
Piazza et al., "Design and Evaluation of a Reconfigurable Antenna Array for MIMO Systems", IEEE Transactions on Antennas and Propagation, 2008, vol. 56, No. 3, pp. 869-881.
Ping-Heng., et al., "Compressive Sensing Based Channel Feedback Protocols for Spatially-Correlated Massive Antenna Arrays", in Proc. IEEE Wireless Communications and Networking Conference (WCNC 2012), Apr. 2012, pp. 492-497.
Pitarokoilis et al., "On the Optimality of Single-Carrier Transmission in Large-Scale Antenna Systems," IEEE Wireless Commun. Lett., Aug. 2012, vol. 1, No. 4, pp. 276-279.
Pitarokoilis, "Effect of Oscillator Phase Noise on Uplink Performance of Large MU-MIMO Systems," in Proc. of the 50th Annual Allerton Conference on Communication, Control, and Computing, Oct. 2012, 9 pages.
Pohl et al., "Antenna spacing in MIMO indoor channels", Proc. IEEE Veh. Technol. Conf., vol. 2,, Jun. 2002, pp. 749-753.
Pollock et al., "Antenna Saturation Effects on MIMO Capacity," IEEE International Conference on Communications, 2003, vol. 4, pp. 2301-2305.
Ponnampalam et al., "On DL Preceding for 11ac", IEEE 802.11-10/01119r0, Medialek, Sep. 2010, 8 pages.
Preliminary Report On Patentability and Written Opinion, App. No. PCT/US2014/025105, Sep. 24, 2015, 10 pages.
Proakis J., "Digital Communications Fourth edition," 2001, pp. 9, Department of Electrical and Computer Engineering, Northeastern University, ISBN 0-07-232111-3, Cover page, Title page, Table of Contents.
Qian, "Partially Adaptive Beamforming for Correlated Interference Rejection", IEEE Trans. On Sign. Proc., 1995, vol. 43, No. 2, pp. 506-515.
Qibi, "A Forward Link Performance Study of the 1 xEV-DO Rev. 0 System Using Field Measurements and Simulations," Lucent Technologies. Retrieved from the Internet: http://www.cdg.org/resources/white%5Fpapers/files/white_papers/files/Luce-nt%201xEV-DO%20Rev%200%20Mar%2004.pdf, Mar. 2004, 19 pages.
Qualcomm Incorporated, "Definition of Virtual Antenna Mapping (VAM) and Applicability of S-CPICH Power Accuracy Requirement", 3GPP TSG-WG4 Meeting 58Ad hoc #1-2011, R4-112408, Apr. 11-15, 2011, 6 pages.
Qualcomm, "The 1000x data challenge, the latest on wireless, voice, services and chipset evolution", 4G World, Oct. 31, 2012 61 pages submitted as Parts 1-3.
Rao et al., "I/Q mismatch cancellation for MIMO-OFDM systems", In Personal, Indoor and Mobile Radio Communications, PIMRC 2004. 15th IEEE International Symposium on, vol. 4, 2004, pp. 2710-2714.
Rao et al., "Multi-antenna testbeds for research and education in wireless communications", IEEE Communications Magazine, vol. 42, No. 12, Dec. 2004, pp. 72-81.
Rapajic et al., Information Capacity of Random Signature Multiple-Input Multiple Output Channel, IEEE Trans. Commun., 2000, vol. 48, No. 8, pp. 1245-1248.
Rappaport, T, Wireless Communications, Principles and Practice, Second Edition, Prentice Hall, 2002, ISBN 0-13-042232-0, Cover page, Title page, Table of Contents, 13 pages.
Ravindran N., et al., "MIMO Broadcast Channels with Block Diagonalization and Finite Rate Feedback", IEEE, ICASSP Apr. 2007, pp. 111-113-111-16.
Reconfigurable Radio Systems (RRS), Radio Base Station (RBS), Software Defined Radio (SOR), Status Implementations and Costs Aspects Including Future Possibilities, Technical Report, ETSI, No. V1.1.1, 2009, 24 pages.
Rejection Decision, JP Patent App. No. JP2014264325, Oct. 3, 2016, 7 pages.
Requirement for Restriction/Election, U.S. Appl. No. 15/792,610, filed Jun. 11, 2018, 6 pages.
Requirement for Restriction/Election, U.S. Appl. No. 15/792,610, filed Nov. 29, 2018, 7 pages.
Rice University, Clayton W. Shepard, Argos: Practical Base Stations for Large-scale Beamforming Thesis, Apr. 2012.
Rice University, www.youtube.com, Argos designed to feed data-hungry smartphones, https://www.youtube.com/watch?v=945wOceJmdw (retrieved Oct. 18, 2024).
Rice, Clayton W. Shepard, Argos: Practical Base Stations for Large-scale Beamforming Slides.
Riegler et al., "Asymptotic Statistics of the Mutual Information for Spatially Correlated Rician Fading MIMO Channels with Interference", IEEE Trans. Inform. Theory, 2010, vol. 56, No. 4, pp. 1542-1559.
Robinson, S., "Toward an Optimal Algorithm for Matrix Multiplication," Nov. 2005, vol. 38, No. 9, 3 pages.
Ruckus wireless, "Long-range 802.11 n Wi-Fi point-to-pointmultipoint backhaul," Sep. 4, 2015, 2 pages, Retrieved from the Internet:< URL: http:www. ruckuswi reless. comproductszaneflex -outdoor7731>.
Rusek et al., "Scaling up MIMO: Opportunities and Challenges with Very Large Arrays", IEEE Signal Proces. Mag., Jan. 2012, vol. 30, No. 1, pp. 1-30.
Rysavy P., "No silver bullets for FCC, NTIA spectrum challenge", Daily report for executives, Bloomberg BNA, Aug. 2012, pp. 1-4, http://www.rysavy.com/Articles/2012 09 No Spectrum Silver Bullets.pdf.
Saleh et al.,"A Statistical Model for Indoor Multipath Propagation", Institute of Electrical and Electronics Engineers Journal on Selected Areas in Communications, 1987, vol. SAC-5 (2), pp. 128-137.
Samsung, "Discussion on open-loop CoMP schemes", 3GPP TSG RAN WG1 #58, R1-093377, 3rd Generation Partnership Project, (3GPP), Aug. 24-28, 2009, pp. 1-4.
Schafhuber D et al., "MMSE and Adaptive Prediction of Time-Varying Channels for OFDM Systems", IEEE Trans. Wireless Commun., 2005, vol. 4, No. 2, pp. 593-602.
Schmidl et al., "Robust frequency and timing synchronization for OFDM", IEEE Trans. Commun., vol. 45, No. 12, Dec. 1997, pp. 1613-1621.
Schubert M., et al., "Joint ‘Dirty Paper’ Pre-Coding and Downlink Beamforming," Spread Spectrum Techniques and Applications, 2002 IEEE Seventh International Symposium, Dec. 2002, vol. 2, pp. 536-540.
Schuchert et al., "A novel I/O imbalance compensation scheme for the reception of OFDM signals," IEEE Transaction on Consumer Electronics, 2001, pp. 313-318.
Search Report and Written Opinion, BR App. No. 112015012165-9, Jul. 16, 2021, 8 pages (4 pages of English Translation and 4 pages of Original Document).
Second Examination Report, AU App. No. 2017210619, May 31, 2019, 4 pages.
Second Office Action and Search Report, Chinese Patent App. No. 201180061132.X, Mar. 11, 2016, 11 pages.
Second Office Action and Search report, Chinese Patent App. No.201280044869.5, Jan. 17, 2017, 19 pages.
Second Office Action and Search Report, CN App. No. 201580007666.2, Jul. 30, 2019, 8 pages (4 pages of English Translation and 4 pages of Original Document).
Second Office Action, CN App. No. 201780066182.4, May 7, 2021, 13 pages (9 pages of English Translation and 4 pages of Original Document).
Second Office Action, MX App. No. MX/a/2014/013795, Feb. 3, 2016, 7 pages.
Second Office Action, ON App. No. 201780066182.4, May 7, 2021, 13 pages (9 pages of English Translation and 4 pages of Original Document).
Serpedin et al., "Blind channel and carrier frequency offset estimation using periodic modulation precoders", Signal Processing, IEEE Transactions on [see also Acoustics, Speech, and Signal Processing, IEEE Transactions on], vol. 48, No. 8, Aug. 2000, pp. 2389-2405.
Sharif et al., "On the capacity of MIMO broadcast channel with partial side information," IEEE Trans. Info. Th, Feb. 2005, vol. 51, No. 2, pp. 506-522.
Shen et al., "Low complexity user selection algorithms for multiuser MIMO systems with block diagonalization," IEEE Transactions on Signal Processing, 2005, pp. 1-12.
Shen Z., et al., "Sum capacity of multiuser MIMO broadcast channels with block diagonalization," IEEE Trans. Wireless Comm, 2005, 5 pages.
Shepard C., Argos: Practical Many-Antenna Base Stations, in Proc. ACM Int. Conf. Mobile Computing and Networking (MobiCom), Aug. 2012, 12 pages.
Shepard C., ArgosV2: A Flexible Many-Antenna Research Platform, Extended Abstract for demonstration in Proc. ACM Int. Conf. Mobile Computing and Networking (MobiCom), Oct. 2013, 3 pages.
Shi et al., "Coarse frame and carrier synchronization of OFDM systems: a new metric and comparison", IEEE Trans. Wireless Commun., vol. 3, No. 4, Jul. 2004, pp. 1271-1284.
Shiu et al., "Fading correlation and its effect on the capacity of multielement antenna systems," IEEE Trans. Comm, 2000, vol. 48, No. 3, pp. 502-513.
Shuangqing Wei et al., "On the Asymptoticcapacity of Mimo Systems With Fixed Length Linear Antenna Arrays," IEEE International Conference on Communications, 2003, vol. 4, pp. 2633-2637.
Simon et al., "Digital Communication Over Fading Channels", A Unified Approach to Performance Analysis, Wiley Series in Telecommunications and Signal Processing, 2000, 10 pages.
Simon et al., "Optimizing MIMO Antenna Systems with Channel Covariance Feedback," IEEE Journal on Selected Areas in Communications, 2003, vol. 2003, pp. 406-417.
Spencer et al., "Adaptive Antennas and MIMO Systems for Wireless Communications—An Introduction to the Multi-User MIMI Downlink", IEEE Communications Magazine, Oct. 2004, pp. 60-67.
Spencer et al., "Zero-forcing methods for downlink spatial multiplexing in multiuser MIMO channels," IEEE Trans. Sig. Proc, 2004, vol. 52, pp. 461-471.
Srinidhi et al., "Layered Tabu Search Algorithm for Large-MIMO Detection and a Lower Bound on ML Performance," IEEE Trans. Commun, 2010, 5 pages.
Stancil et al., "Doubling wireless channel capacity using co-polarised, co-located electric and magnetic dipoles", Electronics Letters, 2002, vol. 38, No. 14, pp. 746-747.
Stanley M., "Mobile Data Wave: Who Dares to Invest, Wins," Jun. 13, 2012, 23 pages.
Sternad M., et al., "Channel Estimation and Prediction for Adaptive OFDM Downlinks [Vehicular Applications]," in Proceeding IEEE Vehicular Technology Conference, vol. 2, Oct. 2003, pp. 1283-1287.
Stevanovic et al., "Smart Antenna Systems for Mobile Communications", Final Report, Laboratoire d'Electromagnetisme et d'Acoustique, Ecole Polytechnique Federale de Lausanne, CH-1015 Lausanne Suisse, Jan. 2003, 120 pages.
Stoytchev et al., "Compact antenna arrays for MIMO applications," IEEE Proc. IEEE Antennas and Prop. Symp., 2001, vol. 3, pp. 708-711.
Strangeways H., "Determination Of The Correlation Distance For Spaced Antennas On Multipath HF Links And Implications For Design Of SIMO And MIMO Systems," School of Electronic and Electrical Engineering, University of Leeds, IEEE First European Conf. on Antennas and Prop., 2005, 12 pages.
Strangways H.J., "Investigation of signal correlation for spaced and co-located antennas on multipath HF links and implications for the design of SIMO and MIMO system," IEEE First European Conf. on Antennas and Propagation (EuCAP 2006), Nov. 2006, pp. 1-6.
Strohmer et al., "Application of Time-Reversal with MMSE Equalizer to UWB Communications", Proc. of IEEE Globecom, vol. 5, Nov. 2004, pp. 3123-3127.
Studer et al., "PAR-Aware Large-Scale Multi-User MIMO-OFDM Downlink", IEEE J. Sel. Areas Commun., Sep. 4, 2012, vol. 31, No. 2, pp. 303-313.
Sulonen et al. "Comparison of MIMO Antenna Configurations in Picocell and Microcell Environments," IEEE Journal on Selected Areas in Communications, 2003, vol. 21, No. 5, pp. 703-712.
Summons to attend oral proceedings pursuant to Rule 115(1) EPC, EP App. No. 12762167.0, Nov. 29, 2017, 8 pages.
Summons to attend oral proceedings pursuant to Rule 115(1) EPC, EP App. No. 13784690.3, Jul. 6, 2020, 5 pages.
Summons to attend oral proceedings pursuant to Rule 115(1) EPC, EP App. No. 13843203.4, Dec. 21, 2020, 9 pages.
Summons to attend oral proceedings pursuant to Rule 115(1) EPC, EP App. No. 13856705.2, Nov. 5, 2018, 7 pages.
Summons to attend oral proceedings pursuant to Rule 115(1) EPC, EP App. No. 14779084.4, Nov. 29, 2019, 9 pages.
Summons to attend oral proceedings, EP App. No. 10156954.9, Jan. 30, 2019, 8 pages.
Supplemental Notice of Allowability, U.S. Appl. No. 12/802,975, filed Oct. 28, 2020, 2 pages.
Supplemental Notice of Allowability, U.S. Appl. No. 15/340,914, filed Jan. 13, 2021, 5 pages.
Supplemental Notice of Allowance, U.S. Appl. No. 12/802,958, filed Dec. 3, 2018, 11 pages.
Supplementary European Search Report, EP App. No. 13790935, Dec. 1, 2015, 9 pages.
Supplementary Partial European Search Report and Search Opinion, EP App No. 17864744.2, May 13, 2020, 16 pages.
Supplementary Partial European Search Report, EP App. No. 11838640.8, Mar. 2, 2017, 13 pages.
Supplementary Partial Search Report, EP App. No. EP14770916, Oct. 21, 2016, 6 pages.
Supplementary Search Report, EP App. No. 05733294, Apr. 5, 2012, 4 pages.
Suraweera et al., Multi-Pair Amplify-and-Forward Relaying with Very Large Antenna Arrays, Proceedings in IEEE International Conference on Communications (ICC), Budapest, Hungary, Jun. 2013, 7 pages.
Suthisopapan et al., "Near Capacity Approaching Capacity of Large MIMO Systems by Non-Binary LDPC Codes and MMSE Detection", in Proc. of the IEEE International Symposium on Information Theory, Mar. 2012, 7 pages.
Suzuki et al., Large-scale multiple antenna fixed wireless systems for rural areas, Proceedings in IEEE PIMRC, Sep. 2012, 6 pages.
Suzuki H., et al., Highly Spectrally Efficient Ngara Rural Wireless Broadband Access Demonstrator, Proceedings in IEEE International Symposium on Communications and Information Technologies (ISCIT), Oct. 2012, 6 pages.
Svac et al., Soft-Heuristic Detectors for Large MIMO Systems, IEEE Trans. Signal Processing, 2013, vol. 61, No. 18, pp. 4573-4586.
Svantesson T., et al., "Analysis of Electromagnetic Field Polarizations in Multiantenna Systems," IEEE Transactions on Wireless Communications, vol. 3 (2), Mar. 2004, pp. 641-646.
Svantesson T., et al., "On Capacity and Correlation of Multi-Antenna Systems Employing Multiple Polarizations," IEEE Antennas and Propagation Society, 2002, vol. 3, pp. 202-205.
Takeuchi et al., "On an Achievable Rate of Large Rayleigh Block-Fading MIMO Channels with No CSI," IEEE Transactions on Information Theory, 2011, 47 pages.
Taluja et al., Diversity Limits of Compact Broadband Multi-Antenna Systems, IEEE J. Sel. Areas Communication, 2013, vol. 31, No. 2, pp. 326-337.
Tang et al., "Joint frequency offset estimation and interference cancellation for MIMO-OFDM systems [mobile radio]," 2004 IEEE 60th Vehicular Technology Conference, VTC2004-Fal, 2004, vol. 3, pp. 1553-1557.
Tanumay et al., "A Novel Monte-Carlo-Sampling-Based Receiver for Large-Scale Uplink Multiuser MIMO Systems," IEEE Transactions on Vehicular Technology, 2013, vol. 62, No. 7, pp. 3019-3038.
Taricco et al., "Asymptotic Mutual Information Statistics of Separately-Correlated Rician Fading MIMO Channels," IEEE Trans. Inform. Theory, Aug. 2008, vol. 54, No. 8, pp. 3490-3504.
Tarighat et al., "Compensation schemes and performance analysis of IQ imbalances in OFDM receivers," IEEE Signal Processing, Transactions on [see also Acoustics, Speech, and Signal Processing, IEEE Transactions on], 2005, vol. 53, pp. 3257-3268.
Tarighat et al., "MIMO OFDM Receivers for systems with IQ imbalances," IEEE Trans. Sig. Pro, for orthogonal space-time block codes (OSTBC), 2005, vol. 53, pp. 3583-3596.
Tarokh et al., "Space-time block codes from orthogonal designs," IEEE Trans. Info, vol. 45, 1999, pp. 1456-1467.
Tarokh et al., "Space-Time Codes for High Data Rate Wireless Communication: Performance Criterion and Code Construction," IEEE Transactions on Information Theory, 1998, vol. 44, pp. 744-765.
Teletar I. E., "Capacity of Multi-antenna Gaussian Channels", European Transactions on Telecommunications, vol. 10, Nov. 1999, pp. 1-28.
Teukolsky S. A., "Numerical Recipes in C: The Art of Scientific Computing", Cambridge University Press, 1992, 949 pages.
Texas Instruments, "Aspects of Coordinated Multi-Point Transmission for Advanced E-UTRA," Nov. 11-15, 2008, 3GPP TSG RAN WG1 #55, R1-084444, 5 pages.
The White House, "Presidential Memorandum: Unleashing the Wireless Broadband Revolution", [retrieved on Jun. 28, 2010] Retrieved from the Internet: URL: http://www.whitehouse.gov/the-press-office/presidential-memorandum-unleashing-wireless-broadband-revolution.
Third Office Action, Chinese Patent App. No. 201280044869.5, Aug. 31, 2017, 15 pages.
Third Office Action, CN App. No. 201480016091.6, Jul. 10, 2019, 5 pages (2 pages of English Translation and 3 pages of Original Document).
Third Office Action, MX App. No. MX/a/2014/013795, Jul. 27, 2016, 6 pages.
Tomlinson M., "New Automatic Equaliser Employing Modulo Arithmetic," Electronics Letters, 1971, vol. 7 (5/6), pp. 138-139.
Tran et al. "A Conic Quadratic Programming Approach to Physical Layer Multicasting for Large-Scale Antenna Arrays," IEEE Signal Processing Letters, Jan. 1, 2014, vol. 21, No. 1, pp. 114-117.
Truong K.T., et al. "Effects of Channel Aging in Massive MIMO Systems," Journal of Communications and Networks, Special Issue on Massive MIMO, 2013, vol. 15 (4), pp. 338-351.
Truong K.T., et al., "The Viability of Distributed Antennas for Massive MIMO Systems," Proceedings of the Asilomar Conference on Signals, Systems, and Computers, Pacific Grove, CA, Nov. 3-6, 2013, pp. 1318-1323.
Tsakalaki et al., "On the Beamforming Performance of Large-Scale Antenna Arrays", Proc. Loughborough Antennas and Propagation Conference (LAPC), Nov. 12-13, 2012, 4 pages.
Tse et al., "Diversity-multiplexing tradeoff in multiple-access channels", IEEE Trans. Info. Th., Mar. 2004, vol. 50, No. 9, pp. 1859-1874.
Tse et al., "Performance Tradeoffs between Maximum Ratio Transmission and Switched-Transmit Diversity", in Proc. 11.sup.th IEEE International Symposium on Personal, Indoor and Mobile Radio Communication, vol. 2, Sep. 2000, pp. 1485-1489.
Tureli et al., "OFDM blind carrier offset estimation: ESPRIT", IEEE Trans. Commun., vol. 48, No. 9, Sep. 2000, pp. 1459-1461.
Tyler et al., "Adaptive antennas: the Calibration Problem", IEEE Comm. Mag., Dec. 2004, pp. 114-122.
Ubuquiti, "airFiber", Available Online at <http:f/www.ubnt.com/airfiber>, Retreived on Sep. 4, 2015, 10 pages.
Ubuquiti, "airMAX", Available Online at <http:www.ubnt.comairmax>, 2015, 10 pages.
Uthansakul P., et al., MIMO antenna selection using CSI from reciprocal channel, Int. Journal Of Elect. And Info. Eng., 2010, vol. 4, No. 10, pp. 482-491.
Valkama et al., "Advanced methods for 1/Q imbalance compensation in communication receivers," IEEE Transactions on Signal Processing, vol. 49, No. 10, 2001, pp. 2335-2344.
Van De Beek et al., "ML estimation of time and frequency offset in OFDM systems", Signal Processing, IEEE Transactions on [see also Acoustics, Speech, and Signal Processing, IEEE Transactions, vol. 45, No. 7, Jul. 1997, pp. 1800-1805.
Van et al., "Beamforming: A Versatile Approach to Spatial Filtering," IEEE ASSP Magazine, 1988, pp. 4-24.
Vance, A., "Steve Perlman's wireless fix", Businessweek, Available Online at <http://www.businessweek.com/magazine/the-edison-of-silicon-valley-727-2011.html>, Jul. 2011, 10 pages.
Vaughan R. G., "On Optimum Combining at the Mobile," IEEE Transactions on Vehicular Technology, Nov. 1988, vol. 37, No. 4, pp. 181-188.
Vaughn R., et al., "Switched parasitic elements for antenna diversity," IEEE Transactions on Antennas and Propagation, 1999, vol. 47, pp. 399-405.
Venkatesan et al., "A WiMAX-Based Implementation of Network MIMO for Indoor Wireless Systems," EURASIP Journal on Advances in Signal Processing, 2009, vol. 2009, 11 pages.
Venkatesan et al., "Network MIMO: Overcoming InterCell Interference In Indoor Wireless Systems," Asilomar Conference on Signals, 2007, vol. 2007, pp. 83-87.
Vieira et al., "A flexible 100-antenna testbed for Massive MIMO," in Proc IEEE Globecom 2014 Workshop—Massive MIMO: From Theory to Practice, Austin, Texas, USA, Dec. 2014, pp. 287-293.
Vishwanath, S, "Duality, Achievable Rates, and Sum-Rate Capacity of Gaussian MIMO Broadcast Channels," IEEE Trans. Info. Th., vol. 49, No. 10, pp. 2658-2668, Oct. 2003.
Visotsky E., et al., "Space-Time Transmit Precoding with Imperfect Feedback," IEEE Transactions on Information Theory, 2001, vol. 47, pp. 2632-2639.
Visuri et al "Colocated Antenna Arrays: Design Desiderata for Wireless Communications," 2002, vol. 2002, pp. 580-584.
Viswanath et al., "Opportunistic beamforming using dump antennas," IEEE Transactions On Information Theory, 2002, vol. 48, pp. 1277-1294.
Viswanath, "Sum Capacity of the Vector Gaussian Broadcast Channel and Uplink-Downlink Duality," IEEE Transactions On Information Theory, 2003, vol. 49, No. 8, pp. 1912-1921.
Wagner et al., "Large System Analysis of Linear Precoding in MISO Broadcast Channels with Limited Feedback," IEEE Transactions on Information Theory, 2012, vol. 58, No. 7, pp. 4509-4537.
Waldschmidt et al., "Compact MIMO-arrays based on polarisation-diversity", Proc. IEEE Antennas and Prop. Symp., 2003, vol. 2, pp. 499-502.
Waldschmidt et al., "Complete RF system model for analysis of compact MIMO arrays," IEEE Trans. on Vehicular Technologies, 2004, vol. 53, pp. 579-586.
Wallace et al., "Statistical Characteristics of Measured MIMO Wireless Channel Data and Comparison to Conventional Models," Proceedings IEEE Vehicular Technology Conference, Oct. 2001, vol. 2 (7-11), pp. 1078-1082.
Wallace et al., "Termination-dependent diversity performance of coupled antennas: Network theory analysis,", IEEE Trans. Antennas Propagat., vol. 52, Jan. 2004, pp. 98-105.
Wang Z., "Performance of Uplink Multiuser Massive MIMO system," International Conference on Acoustics Speech and Signal Processing, Florence, Italy, Nov. 6, 2013, 5 pages.
Wang Z., et al., "Enhanced downlink MU-Comp schemes for TD-LTE-Advanced," Wireless Communications and Networking Conference (WCNC), IEEE, 2010, 6 pages.
Wannstrom J., "Carrier Aggregation Explained," 3GPP, Available Online at <http://www.3gpp.org/Carrier-Aggregation-explained>, Jun. 2013, 6 pages.
Warrington et al. "Measurement and Modeling of HF Channel Directional Spread Characteristics For Northerly Paths", Radio Science, vol. 41, RS2006, DOI:10.1029/2005RS003294, 2006, pp. 1-13.
Webpass, Buildings online, Available Online at <http://www.webpass.net/buildings?city=san+francisco&column=address&order=asc>, Retrieved on Sep. 4, 2015, 3 pages.
Weedon W.H., et al., "MEMS—switched reconfigurable antennas", IEEE Antennas and Propagation Society, AP-S International Symposium (Digest), vol. 3, 2001, pp. 654-657.
Wen et al.,"On the Sum-Rate of Multiuser MIMO Uplink Channels with Jointly-Correlated Rician fading", IEEE Trans. Commun., 2011, vol. 59, No. 10, pp. 2883-2895.
Wenck et al., "Asymptotic Mutual Information for Rician MIMO-MA Channels with Arbitrary Inputs: A Replica Analysis", IEEE Trans. Commun., 2010, vol. 58, No. 10, pp. 2782-2788.
Wennestrom et al., "An Antenna Solution for MIMO Channels: The Switched Parasitic Antenna," IEEE International Symposium on Personal, Indoor and Mobile Radio Communications, PIMRC, vol. 1, 2001, pp. 159-163.
Werner, Kari, et al., "LTE-Advanced 8×8 MIMO Measurements in an Indoor Scenario", Proceedings of ISAP2012, Nagoya, Japan, Oct. 29, 2012, pp. 750-753.
Werner, Karl, et al., "LTE-Advanced 8×8 MIMO Measurements in an Indoor Scenario", Proceedings of ISAP2012, Nagoya, Japan, Oct. 29, 2012, pp. 750-753.
Wheeler et al., "Small antennas," IEEE Transactions on Antennas and Propagation, 1975, vol. AP-23, No. 4, pp. 462-469.
Wi-Fi alliance, Homepage, Available Online at <www.wi-fi.org>, Retrieved on Aug. 14, 2014, pp. 1-3.
Wikipedia, "Advanced Mobile Phone System", Available Online at <https://en.wikipedia.org/wiki/AdvancedMobilePhoneSystem>, 2014, 6 pages.
Wikipedia, "IS-95" Available Online at <http:en.wikipedia.orgwikiIS-95>, 2014, 6 pages.
WiMAX forum, Available Online at <http://www.wimaxforum.org/>, Aug. 14, 2014, 1 page.
Wired, Has OnLive's Steve Perlman Discovered Holy Grail of Wireless?, Jun. 30, 2011 Retrieved from the Internet: http:www.wired.comepicenter201106perlman-holy-grail-wireless.
Wong et al., "A joint-channel diagonalization for multiuser MIMO antenna systems", IEEE Trans. Wireless Comm., vol. 2, Jul. 2003, pp. 773-786.
Wong et al., "Exploiting Spatia-Temporal Correlations in MIMO Wireless Channel Prediction," Dec. 2006, IEEE GLOBECOM Conference, 5 pages.
Wong et al., "Joint Channel Estimation and Prediction for OFDM Systems," Proceedings in IEEE Global Telecommunications Conference, St. Louis, MO, 2005, pp. 2255-2259.
Wong et al., "Long Range Channel Prediction for Adaptive OFDM Systems," Proceedings IEEE Asilomar Conf. on Signals, Systems, and Computers, vol. 1, Nov. 7-10, 2004, pp. 723-736.
Wong et al., "Performance Enhancement of Multiuser MIMO Wireless Communication Systems," IEEE Transactions On Communications, vol. 50, No. 12, Dec. 2002, pp. 1960-1970.
Written Opinion, BR App. No. 112014027631-5, Jun. 18, 2020, 4 pages of Original document only.
Written Opinion, BR App. No. 112014028207, Jul. 21, 2021, 10 pages (5 pages of English Translation and 5 pages of Original document).
Written Opinion, BR App. No. 112015022911-5, Jul. 22, 2020, 4 pages of Original Document Only.
Written Opinion, BR App. No. 112015023223-0, Jul. 22, 2020, 5 pages of Original Document Only.
Wu et al., "Approximate Matrix Inversion for High-Throughput Data Detection in the Large-scale MIMO Uplink," IEEE International Symposium on Circuits and Systems (ISCAS), May 2013, pp. 2155-2158.
Xiao et al., "A Comparative Study of MIMO Capacity with Different Antenna Topologies," IEEE ICCS'02, vol. 1, Nov. 2002, pp. 431-435.
Xu J., "LTE-Advanced Signal Generation and Measurements using SystemVue," Agilent Technologies, Dec. 23, 2010, 46 pages.
Yang et al., "On the Capacity of Large-MIMO Block-Fading Channels," IEEE Journal on Selected Areas in Communications, vol. 31, No. 2, Feb. 2012, pp. 117-132.
Yin et al., "A Coordinated Approach to Channel Estimation in Large-scale Multiple-antenna Systems", IEEE Journal on Selected Areas in Communications, vol. 31, No. 2, Mar. 2012, pp. 264-273.
Yin et al., "Full-Duplex in Large-Scale Wireless System," Proceeding of the Asilomar Conference on Signals, Systems and Computers, Nov. 2013, 5 pages.
Yin et al., "Implementation trade-offs for linear detection in large-scale MIMO systems," Proceeding Institute of Electrical and Electronics Engineers International Conference on Acoustics Speech, and Signal Processing, May 2013, 5 pages.
Yoo et al., "Multi-Antenna Downlink Channels with Limited Feedback and User Selection," IEEE Journal On Selected Areas In Communications, Sep. 2007, vol. 25, No. 7, pp. 1478-1491.
Yoshida, Susumu, "Coherent Coordinated Multipoint Transmission Techniques for Wireless Distributed Networks", Kyoto University, Available Online at <www.soumu.go.jp/main_content/000256555.pdf>, 2013, 5 pages (3 pages of English Translation and 2 pages of Original Document).
Yu et al., "Sum Capacity of Gaussian Vector Broadcast Channels", IEEE Transactions On Information Theory, vol. 50, No. 9, Sep. 2004, pp. 1875-1892.
Yu et al., "Trellis Precoding for the Broadcast Channel," IEEE Globecom, 2001, vol. 2, pp. 1344-1348.
Zaidel et al., "Vector Precoding for Gaussian MIMO Broadcast Channels: Impact of Replica Symmetry Breaking", Institute of Electrical and Electronics Engineers Transactions on Information Theory, Mar. 2012, vol. 58, No. 3, pp. 1413-1440.
Zakhour et al., "Min-Max Fair Coordinated Beamforming via Large Systems Analysis,", in Proc. of the IEEE International Symposium on Information Theory, St. Petersburg, Jul. 2011, pp. 1990-1994.
Zamir et al., "Capacity and lattice-strategies for cancelling known interference," Proceedings of International Symposium on Information Theory, Honolulu, Hawaii, Nov. 2000, pp. 1-32.
Zetterberg, Per, "Experimental Investigation of TDD Reciprocity based Zero-Forcing Transmit Precoding", EURASIP Journal on Advances in Signal Processing, vol. 2011, Article ID 137541, Jun. 2010, 11 pages.
Zhang et al. "On Capacity of Large-Scale MIMO Multiple Access Channels with Distributed Sets of Correlated Antennas," IEEE Journal on Selected Areas in Communications, Sep. 26, 2012, vol. 31, No. 2, pp. 1-52.
Zhang et al., "Cochannel Interference Mitigation and Cooperative Processing in Downlink Multicell Multiuser MIMO Networks," EURASIP Journal on Wireless Communications and Networking, vol. 2004, No. 2, Jul. 2004, pp. 222-235.
Zhang et al., "Coordinated Multi-Cell MIMO Systems With Cellular Block Diagonalization", IEEE 2007, pp. 1669-1673.
Zhang et al., "Electromagnetic Lens-focusing Antenna Enabled Massive MIMO", Jun. 6, 2013, pp. 1-7.
Zhang et al., "Hermitian Precoding for Distributed MIMO Systems with Individual Channel State Information," IEEE Journal on Selected Areas in Communications, 2013, vol. 31, No. 2, pp. 241-250.
Zhang et al., "Networked MIMO with Clustered Linear Precoding", IEEE Transactions On Wireless Communications, vol. 8, No. 4, Apr. 2009, pp. 1910-1921.
Zheng et al., "Diversity and multiplexing: a fundamental tradeoff in multiple antenna channels," IEEE Trans. Info. Th., 2003, vol. 49, No. 5, pp. 1073-1096.
Zhou et al., "An Improved LR-aided K-Best Algorithm for MIMO Detection," in Proc. IEEE International Conference on Wireless Communications and Signal Processing (WCSP), Oct. 2012, 5 pages.
Zhuang et al., "Channel models for link and system level simulations", IEEE 802.16 Broadband Wireless Access Working Group, Sep. 2004, 15 pages.
Zogg et al., "Multipath Delay Spread in a Hilly Region at 210 MHz", IEEE Transactions On Vehicular Technology, vol. VT-36, No. 4, Nov. 1987, pp. 184-187.
Zou et al., "Li Reducing the Complexity of Quasi-Maximum-Likelihood Detectors Through Companding for Coded MIMO Systems," IEEE Transactions on Vehicular Technology, Mar. 2012, vol. 2012, pp. 1109-1123.
Zyren J., "Overview on the 3GPP Long Term Evolution Physical Layer," Freescale White Paper, Jul. 2007, 27 pages.

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